USPatent applicationPatented

Thienopyrimidine inhibitors of atypical protein kinase C

Granted 23 Mar 2021 · 3 office actions

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Abstract

The present application provides a compound of formula (I) [structure] or a salt thereof, wherein R 1 , R 2 , R 3 , R 4 , R 5 , R 6 , A, G, M, Q and X are as defined herein. A compound of formula (I) and its salts have a PKC inhibitory activity, and may be used to treat proliferative disorders.

Description

535 parts
›CROSS-REFERENCE TO RELATED PATENT APPLICATIONS

This application is a divisional of U.S. application Ser. No. 15/417,191, filed Jan. 26, 2017, which is a continuation of U.S. application Ser. No. 14/285,007, now U.S. Pat. No. 9,604,994, filed May 22, 2014, which is a continuation of International Patent Application No. PCT/US2012/065831, filed Nov. 19, 2012, which claims the benefit of U.S. Provisional Application No. 61/563,310, filed Nov. 23, 2011, the content of each of which is incorporated herein by reference in its entirety.

›BACKGROUND OF THE INVENTION · 1 of 2

PKCι and PKCζ (accession numbers NM_002740 and NM_002744 respectively) together define the atypical sub-class of the protein kinase C (PKC) family (aPKCs). The aPKCs are structurally and functionally distinct from the other PKC sub-classes, classic/conventional and novel, as their catalytic activity is not dependent on diacylglycerol and calcium (Ono, Y., Fujii, T., Ogita, K., Kikkawa, U., Igarashi, K., and Nishizuka, Y. (1989). Protein kinase C zeta subspecies from rat brain: its structure, expression, and properties. Proc Natl Acad Sci USA 86, 3099-3103). Structurally, PKCι and PKCζ contain a C-terminal serine/threonine kinase domain (AGC class) and an N-terminal regulatory region containing a Phox Bem 1 (PB1) domain involved in mediating protein:protein interactions critical for aPKC function. At the amino acid level the aPKCs share 72% overall homology, however, the kinase domains share 84% identity and differ in the active site by just a single amino acid. This striking homology suggests an ATP-competitive ligand would not be expected to exhibit significant aPKC isoform selectivity.

The aPKCs have been implicated in a diverse number of signalling pathways, demonstrating both redundant and distinct signalling functions. Both isoforms have emerged as central players in the mechanisms that regulate the establishment and maintenance of cellular polarity in multiple cell types (reviewed in Suzuki, A., and Ohno, S. (2006). The PAR-aPKC system: lessons in polarity. J Cell Sci 119, 979-987). Genetic dissection of their functions using knockout mice have also revealed preferential roles for PKCζ in the regulation of NF-kB signalling (Leitges, M., Sanz, L., Martin, P., Duran, A., Braun, U., Garcia, J. F., Camacho, F., Diaz-Meco, M. T., Rennert, P. D., and Moscat, J. (2001). Targeted disruption of the zetaPKC gene results in the impairment of the NF-kappaB pathway. Mol Cell 8, 771-780), and PKCι in insulin secretion and action (Farese, R. V., Sajan, M. P., Yang, H., Li, P., Mastorides, S., Gower, W. R., Jr., Nimal, S., Choi, C. S., Kim, S., Shulman, G. I., et al. (2007). Muscle-specific knockout of PKC-lambda impairs glucose transport and induces metabolic and diabetic syndromes. J Clin Invest 117, 2289-2301). In addition, both isoforms have been implicated in the pathogenesis of cancer making a strong case for the inhibition of the aPKCs as a novel therapeutic avenue.

PKCι is a known oncogene in non-small cell lung cancer (NSCLC). In one study it was shown to be overexpressed in 69% of NSCLC cases at the protein level. Consistent with this, the PKCι gene (PRKCI residing on chromosome 3q26) was shown to be amplified in 36.5% of NSCLC tumours examined, including 96% of the squamous cell carcinoma sub-type (Regala, R. P., Weems, C., Jamieson, L., Khoor, A., Edell, E. S., Lohse, C. M., and Fields, A. P. (2005b). Atypical protein kinase C iota is an oncogene in human non-small cell lung cancer. Cancer Res 65, 8905-8911). Amplification of 3q26 has also been reported in 44% of ovarian cancers, including >70% of serous epithelial ovarian cancers where 3q26 amplification is translated into increased PKCι protein expression. Moreover, increased PKCι expression is associated with poor prognosis in NSCLC and ovarian cancer where it may serve as a diagnostic biomarker of aggressive disease (Eder, A. M., Sui, X., Rosen, D. G., Nolden, L. K., Cheng, K. W., Lahad, J. P., Kango-Singh, M., Lu, K. H., Warneke, C. L., Atkinson, E. N., et al. (2005). Atypical PKCiota contributes to poor prognosis through loss of apical-basal polarity and cyclin E overexpression in ovarian cancer. Proc Natl Acad Sci USA 102, 12519-12524; Zhang, L., Huang, J., Yang, N., Liang, S., Barchetti, A., Giannakakis, A., Cadungog, M. G., O'Brien-Jenkins, A., Massobrio, M., Roby, K. F., et al. (2006). Integrative genomic analysis of protein kinase C (PKC) family identifies PKCiota as a biomarker and potential oncogene in ovarian carcinoma. Cancer Res 66, 4627-4635). 3q26 amplifications have been observed in many other cancers including oesophageal squamous cell carcinoma (Yang, Y. L., Chu, J. Y., Luo, M. L., Wu, Y. P., Zhang, Y., Feng, Y. B., Shi, Z. Z., Xu, X., Han, Y. L., Cai, Y., et al. (2008). Amplification of PRKCI, located in 3q26, is associated with lymph node metastasis in esophageal squamous cell carcinoma. Genes Chromosomes Cancer 47, 127-136) and breast cancer (Kojima, Y., Akimoto, K., Nagashima, Y., Ishiguro, H., Shirai, S., Chishima, T., Ichikawa, Y., Ishikawa, T., Sasaki, T., Kubota, Y., et al. (2008). The overexpression and altered localization of the atypical protein kinase C lambda/iota in breast cancer correlates with the pathologic type of these tumors. Hum Pathol 39, 824-831) suggesting that PKCι may also participate in the pathogenesis of these diseases.

In NSCLC the primary function of PKCι is to drive transformed growth via a Rac1/PAK/MEK/ERK signalling axis. However, PKCι also functions in NSCLC survival, resistance to chemotherapy, and invasion via distinct pathways (reviewed in Fields, A. P., and Regala, R. P. (2007). Protein kinase C iota: human oncogene, prognostic marker and therapeutic target. Pharmacol Res 55, 487-497). In ovarian cancer transformed growth is correlated with deregulated epithelial cell polarity and increased cycle E expression (Eder et al., 2005) suggesting that PKCι can influence the cancer phenotype through multiple mechanisms. Compelling evidence has emerged to suggest that inhibition of PKCι may be a useful therapeutic approach to combat tumours characterised by increased PKCι expression. In transgenic models, mice with elevated PKCι activity in the colon are more susceptible to carcinogen-induced colon carcinogenesis, and expression of a kinase-dead mutant of PKCι blocks the transformation of intestinal cells by oncogenic Ras (Murray, N. R., Jamieson, L., Yu, W., Zhang, J., Gokmen-Polar, Y., Sier, D., Anastasiadis, P., Gatalica, Z., Thompson, E. A., and Fields, A. P. (2004). Protein kinase Ciota is required for Ras transformation and colon carcinogenesis in vivo. J Cell Biol 164, 797-802). Finally, genetic or pharmacological inhibition of PKCι by a gold derivative—aurothiomalate (ATM)—blocks the growth of NSCLC cells in soft agar and significantly decreases tumour volume in xenograft models of NSCLC(Regala, R. P., Thompson, E. A., and Fields, A. P. (2008). Atypical protein kinase C iota expression and aurothiomalate sensitivity in human lung cancer cells. Cancer Res 68, 5888-5895; Regala, R. P., Weems, C., Jamieson, L., Copland, J. A., Thompson, E. A., and Fields, A. P. (2005a). Atypical protein kinase C iota plays a critical role in human lung cancer cell growth and tumorigenicity. J Biol Chem 280, 31109-31115).

›BACKGROUND OF THE INVENTION · 2 of 2

Despite the high degree of similarity between aPKC isoforms, the role of PKCζ in cancer is distinct from that of PKCι. PKCζ plays a role in NSCLC cell survival by phosphorylating and antagonising the pro-apoptotic effects of Bax in response to nicotine (Xin, M., Gao, F., May, W. S., Flagg, T., and Deng, X. (2007). Protein kinase Czeta abrogates the proapoptotic function of Bax through phosphorylation. J Biol Chem 282, 21268-21277). PKCζ activity has also been linked to resistance against a wide range of cytotoxic and genotoxic agents. For instance, in human leukaemia cells, overexpression of PKCζ confers resistance against 1-β-D-arabinofuranosylcytosine (ara-C), daunorubicin, etoposide, and mitoxantrone-induced apoptosis (Filomenko, R., Poirson-Bichat, F., Billerey, C., Belon, J. P., Garrido, C., Solary, E., and Bettaieb, A. (2002). Atypical protein kinase C zeta as a target for chemosensitization of tumor cells. Cancer Res 62, 1815-1821; Plo, I., Hernandez, H., Kohlhagen, G., Lautier, D., Pommier, Y., and Laurent, G. (2002). Overexpression of the atypical protein kinase C zeta reduces topoisomerase II catalytic activity, cleavable complexes formation, and drug-induced cytotoxicity in monocytic U937 leukemia cells. J Biol Chem 277, 31407-31415). Furthermore, inhibition of PKCζ activity through expression of a kinase-dead mutant sensitises leukaemia cells to the cytotoxic effects of etoposide both in vitro and in vivo (Filomenko et al., 2002). Atypical protein kinase C regulates dual pathways for degradation of the oncogenic coactivator SRC-3/AIB1. Mol Cell 29, 465-476), and both of these proteins have been postulated to play a role in tamoxifen resistance in breast cancer (Iorns, E., Lord, C. J., and Ashworth, A. (2009). Parallel RNAi and compound screens identify the PDK1 pathway as a target for tamoxifen sensitization. Biochem J 417, 361-370; Osborne, C. K., Bardou, V., Hopp, T. A., Chamness, G. C., Hilsenbeck, S. G., Fuqua, S. A., Wong, J., Allred, D. C., Clark, G. M., and Schiff, R. (2003). Role of the estrogen receptor coactivator AIB1 (SRC-3) and HER-2/neu in tamoxifen resistance in breast cancer. J Natl Cancer Inst 95, 353-361). Together these studies suggest that inhibition of PKCζ activity may have beneficial therapeutic effects by acting as a chemosensitiser to a wide array of commonly used chemotoxic agents in the clinic.

Further evidence that small molecule inhibition of PKCζ could have important therapeutic benefits has recently emerged from tumour models that link PKCζ signalling to the mTOR pathway. PKCζ is constitutively activated in follicular lymphoma and has been identified as a novel target for the anti-CD20 therapeutic antibody rituximab (Leseux, L., Laurent, G., Laurent, C., Rigo, M., Blanc, A., Olive, D., and Bezombes, C. (2008). PKC zeta mTOR pathway: a new target for rituximab therapy in follicular lymphoma. Blood 111, 285-291). Rituximab inhibits follicular lymphoma proliferation by targeting a PKCζ-MAPK-mTOR pathway, suggesting that PKCζ is both a target of Rituximab, and a key regulator of its' anti-leukaemic effect. Regulation of the mTOR/p70S6K pathway by PKCζ has also been implicated in the transition of prostate cancer cells to an androgen-independent state (Inoue, T., Yoshida, T., Shimizu, Y., Kobayashi, T., Yamasaki, T., Toda, Y., Segawa, T., Kamoto, T., Nakamura, E., and Ogawa, O. (2006). Requirement of androgen-dependent activation of protein kinase Czeta for androgen-dependent cell proliferation in LNCaP Cells and its roles in transition to androgen-independent cells. Mol Endocrinol 20, 3053-3069). Finally, mice containing a homozygous deletion of Par4, a negative regulator of PKCζ, exhibit greatly enhanced PKCζ activity. These mice spontaneously develop tumours of the prostate and endometrium, and potentiate Ras-induced lung carcinogenesis consistent with a role for PKC in lung cancer (Garcia-Cao, I., Duran, A., Collado, M., Carrascosa, M. J., Martin-Caballero, J., Flores, J. M., Diaz-Meco, M. T., Moscat, J., and Serrano, M. (2005). Tumour-suppression activity of the proapoptotic regulator Par4. EMBO Rep 6, 577-583; Joshi, J., Fernandez-Marcos, P. J., Galvez, A., Amanchy, R., Linares, J. F., Duran, A., Pathrose, P., Leitges, M., Canamero, M., Collado, M., et al. (2008). Par-4 inhibits Akt and suppresses Ras-induced lung tumorigenesis. EMBO J 27, 2181-2193).

A need exists for aPKC inhibitors for use as pharmaceutical agents.

›SUMMARY OF THE INVENTION

The invention provides a compound of formula (I)

or a salt thereof, wherein R 1 , R 2 , R 3 , R 4 , R 5 , R 6 , A, G, M, Q and X are as defined herein.

A compound of formula (I) and its salts have aPKC inhibitory activity, and may be used to treat aPKC-dependent disorders or conditions.

The present invention further provides a pharmaceutical composition comprising a compound of formula (I) or a pharmaceutically acceptable salt thereof together with at least one pharmaceutically acceptable carrier, diluent, or excipient therefor.

In another aspect, the present invention provides a method of treating a subject suffering from an aPKC-dependent disorder or condition comprising: administering to the subject a compound of formula (I) or a pharmaceutically acceptable salt thereof.

The present invention further provides a method of treating a proliferative disorder in a subject, comprising administering to the subject a therapeutically effective amount of a compound of formula (I) or a pharmaceutically acceptable salt thereof.

›DETAILED DESCRIPTION OF THE INVENTION · 1 of 3

I. Definitions

“About” as used herein when referring to a measurable value such as an amount, a temporal duration, and the like, is meant to encompass reasonable variations of the value, such as, for example, ±10% from the specified value. For example, the phrase “about 50” encompasses reasonable variations of 50, such as ±10% of the numerical value 50, or from 45 to 55.

“Alkyl” or “alkyl group” refers to a monoradical of a branched or unbranched saturated hydrocarbon chain. Examples include, but are not limited to, methyl, ethyl, n-propyl, n-butyl, n-pentyl, n-hexyl, n-heptyl, n-octyl, n-nonyl, n-decyl, isopropyl, tert-butyl, isobutyl, etc. Alkyl groups typically contain 1-10 carbon atoms, such as 1-6 carbon atoms or 1-4 carbon atoms, and can be substituted or unsubstituted.

“Alkylene” or “alkylene group” refers to a diradical of a branched or unbranched saturated hydrocarbon chain. Examples include, but are not limited to, methylene (—CH 2 —), the ethylene isomers (—CH(CH 3 )— and —CH 2 CH 2 —), the propylene isomers (—CH(CH 3 )CH 2 —, —CH(CH 2 CH 3 )—, —C(CH 3 ) 2 —, and —CH 2 CH 2 CH 2 —), etc. Alkylene groups typically contain 1-10 carbon atoms, such as 1-6 carbon atoms, and can be substituted or unsubstituted.

“Alkenyl” or “alkenyl group” refers to a monoradical of a branched or unbranched hydrocarbon chain containing at least one double bond. Examples include, but are not limited to, ethenyl, 3-buten-1-yl, 2-ethenylbutyl, and 3-hexen-1-yl. Alkenyl groups typically contain 2-10 carbon atoms, such as 2-6 carbon atoms or 2-4 carbon atoms, and can be substituted or unsubstituted.

“Alkynyl” or “alkynyl group” refers to a monoradical of a branched or unbranched hydrocarbon chain containing at least one triple bond. Examples include, but are not limited to, ethynyl, 3-butyn-1-yl, propynyl, 2-butyn-1-yl, and 3-pentyn-1-yl. Alkynyl groups typically contain 2-10 carbon atoms, such as 2-6 carbon atoms or 2-4 carbon atoms, and can be substituted or unsubstituted.

“Aryl” or “aryl group” refers to phenyl and 7-15 membered monoradical bicyclic or tricyclic hydrocarbon ring systems, including bridged, spiro, and/or fused ring systems, in which at least one of the rings is aromatic. Aryl groups can be substituted or unsubstituted. Examples include, but are not limited to, naphthyl, indanyl, 1,2,3,4-tetrahydronaphthalenyl, 6,7,8,9-tetrahydro-5H-benzocycloheptenyl, and 6,7,8,9-tetrahydro-5H-benzocycloheptenyl. An aryl group may contain 6 (i.e., phenyl) or 9 to 15 ring atoms, such as 6 (i.e., phenyl) or 9-11 ring atoms, e.g., 6 (i.e., phenyl), 9 or 10 ring atoms.

“Arylene” or “arylene group” refers to a phenylene (—C 6 H 4 —) or a 7-15 membered diradical bicyclic or tricyclic hydrocarbon ring systems, including bridged, spiro, and/or fused ring systems, in which at least one of the rings is aromatic. Arylene groups can be substituted or unsubstituted. For example, an arylene group may contain 6 (i.e., phenylene) or 9 to 15 ring atoms; such as 6 (i.e., phenylene) or 9-11 ring atoms; e.g., 6 (i.e., phenylene), 9 or 10 ring atoms. An arylene group can also include ring systems substituted on ring carbons with one or more —OH functional groups (which may further tautomerize to give a ring C═O group).

“Arylalkyl” or “arylalkyl group” refers to an alkyl group in which a hydrogen atom is replaced by an aryl group, wherein alkyl group and aryl group are as previously defined (i.e., arylalkyl-). Arylalkyl groups can be substituted or unsubstituted. Examples include, but are not limited to, benzyl (C 6 H 5 CH 2 —).

“Cycloalkyl” or “cycloalkyl group” refers to a monoradical non-aromatic carbocyclic ring system, which may be saturated or unsaturated, substituted or unsubstituted, and may be monocyclic, bicyclic, or tricyclic, and may be bridged, spiro, and/or fused. Examples include, but are not limited to, cyclopropyl, cyclopropenyl, cyclobutyl, cyclobutenyl, cyclopentyl, cyclopentenyl, cyclohexyl, cyclohexenyl, norbornyl, norbornenyl, bicyclo[2.2.1]hexane, bicyclo[2.2.1]heptane, bicyclo[2.2.1]heptene, bicyclo[3.1.1]heptane, bicyclo[3.2.1]octane, bicyclo[2.2.2]octane, bicyclo[3.2.2]nonane, bicyclo[3.3.1]nonane, and bicyclo[3.3.2]decane. The cycloalkyl group may contain from 3 to 10 ring atoms, such as 3 to 7 ring atoms (e.g., 3 ring atoms, 5 ring atoms, 6 ring atoms, or 7 ring atoms).

“Cycloalkylalkyl” or “cycloalkylalkyl group” refers to an alkyl group in which a hydrogen atom is replaced by a cycloalkyl group, wherein alkyl group and cycloalkyl group are as previously defined (i.e., cycloalkylalkyl-). Cycloalkylalkyl groups can be substituted or unsubstituted. Examples include, but are not limited to, cyclohexylmethyl (C 6 H 11 CH 2 —).

“Haloalkyl” or “haloalkyl group” refers to alkyl groups in which one or more hydrogen atoms are replaced by halogen atoms. Haloalkyl includes both saturated alkyl groups and unsaturated alkenyl and alkynyl groups, such as for example —CF 3 , —CHF 2 , —CH 2 F, —CF 2 CF 3 , —CHFCF 3 , —CH 2 CF 3 , —CF 2 CH 3 , —CHFCH 3 , —CF 2 CF 2 CF 3 , —CF 2 CH 2 CH 3 , —CF═CF 2 , —CCl═CH 2 , —CBr═CH 2 , —CI═CH 2 , —C≡C—CF 3 , —CHFCH 2 CH 3 and —CHFCH 2 CF 3 .

“Halogen” includes fluorine, chlorine, bromine and iodine atoms.

“Heteroaryl” or “heteroaryl group” refers to (a) 5 and 6 membered monocyclic aromatic rings, which contain, in addition to carbon atom(s), at least one heteroatom, such as nitrogen, oxygen or sulfur, and (b) 7-15 membered bicyclic and tricyclic rings, which contain, in addition to carbon atom(s), at least one heteroatom, such as nitrogen, oxygen or sulfur, and in which at least one of the rings is aromatic. Heteroaryl groups can be substituted or unsubstituted, and may be bridged, spiro, and/or fused. Examples include, but are not limited to, 2,3-dihydrobenzofuranyl, 1,2-dihydroquinolinyl, 3,4-dihydroisoquinolinyl, 1,2,3,4-tetrahydroisoquinolinyl, 1,2,3,4-tetrahydroquinolinyl, benzoxazinyl, benzthiazinyl, chromanyl, furanyl, 2-furanyl, 3-furanyl, imidazolyl, isoxazolyl, isothiazolyl, oxadiazolyl, oxazolyl, pyridinyl, 2-, 3-, or 4-pyridinyl, pyrimidinyl, 2-, 4-, or 5-pyrimidinyl, pyrazolyl, pyrrolyl, 2- or 3-pyrrolyl, pyrazinyl, pyridazinyl, 3- or 4-pyridazinyl, 2-pyrazinyl, thienyl, 2-thienyl, 3-thienyl, tetrazolyl, thiazolyl, thiadiazolyl, triazinyl, triazolyl, pyridin-2-yl, pyridin-4-yl, pyrimidin-2-yl, pyridazin-4-yl, pyrazin-2-yl, naphthyridinyl, pteridinyl, phthalazinyl, purinyl, alloxazinyl, benzimidazolyl, benzofuranyl, benzofurazanyl, 2H-1-benzopyranyl, benzothiadiazine, benzothiazinyl, benzothiazolyl, benzothiophenyl, benzoxazolyl, cinnolinyl, furopyridinyl, indolinyl, indolizinyl, indolyl, or 2-, 3-, 4-, 5-, 6-, or 7-indolyl, 3H-indolyl, quinazolinyl, quinoxalinyl, isoindolyl, isoquinolinyl, 10-aza-tricyclo[6.3.1.0*2,7*]dodeca-2(7),3,5-trienyl, 12-oxa-10-aza-tricyclo[6.3.1.0*2,7*]dodeca-2(7),3,5-trienyl, 12-aza-tricyclo[7.2.1.0*2,7*]dodeca-2(7),3,5-trienyl, 10-aza-tricyclo[6.3.2.0*2,7*]trideca-2(7),3,5-trienyl, 2,3,4,5-tetrahydro-1H-benzo[d]azepinyl, 1,3,4,5-tetrahydro-benzo[d]azepin-2-onyl, 1,3,4,5-tetrahydro-benzo[b]azepin-2-onyl, 2,3,4,5-tetrahydro-benzo[c]azepin-1-onyl, 1,2,3,4-tetrahydro-benzo[e][1,4]diazepin-5-onyl, 2,3,4,5-tetrahydro-1H-benzo[e][1,4]diazepinyl, 5,6,8,9-tetrahydro-7-oxa-benzocycloheptenyl, 2,3,4,5-tetrahydro-1H-benzo[b]azepinyl, 1,2,4,5-tetrahydro-benzo[e][1,3]diazepin-3-onyl, 3,4-dihydro-2H-benzo[b][1,4]dioxepinyl, 3,4-dihydro-2H-benzo[f][1,4]oxazepin-5-onyl, 6,7,8,9-tetrahydro-5-thia-8-aza-benzocycloheptenyl, 5,5-dioxo-6,7,8,9-tetrahydro-5-thia-8-aza-benzocycloheptenyl, and 2,3,4,5-tetrahydro-benzo[f][1,4]oxazepinyl. For example, a heteroaryl group may contain 5, 6, or 8-15 ring atoms. As another example, a heteroaryl group may contain 5 to 10 ring atoms, such as 5, 6, 9, or 10 ring atoms.

›DETAILED DESCRIPTION OF THE INVENTION · 2 of 3

“Heteroarylalkyl” or “heteroarylalkyl group” refers to an alkyl group in which a hydrogen atom is replaced by a heteroaryl group, wherein alkyl group and heteroaryl group are as previously defined (i.e., heteroarylalkyl-). Heteroarylalkyl groups can be substituted or unsubstituted. Examples include, but are not limited to, the pyridinylmethyl isomers

“Heterocycloalkyl” or “heterocycloalkyl group” refers to 3-15 membered monocyclic, bicyclic, and tricyclic non-aromatic rings, which may be saturated or unsaturated, can be substituted or unsubstituted, may be bridged, spiro, and/or fused, and which contain, in addition to carbon atom(s), at least one heteroatom, such as nitrogen, oxygen, sulfur or phosphorus. Examples include, but are not limited to, tetrahydrofuranyl, pyrrolidinyl, pyrrolinyl, imidazolidinyl, imidazolinyl, pyrazolidinyl, pyrazolinyl, piperidyl, piperazinyl, indolinyl, isoindolinyl, morpholinyl, thiomorpholinyl, homomorpholinyl, homopiperidyl, homopiperazinyl, thiomorpholinyl-5-oxide, thiomorpholinyl-S,S-dioxide, pyrrolidinyl, tetrahydropyranyl, piperidinyl, tetrahydrothienyl, homopiperidinyl, homothiomorpholinyl-S,S-dioxide, oxazolidinonyl, dihydropyrazolyl, dihydropyrrolyl, dihydropyrazinyl, dihydropyridinyl, dihydropyrimidinyl, dihydrofuryl, dihydropyranyl, tetrahydrothienyl-5-oxide, tetrahydrothienyl-S,S-dioxide, homothiomorpholinyl-5-oxide, quinuclidinyl, 2-oxa-5-azabicyclo[2.2.1]heptane, 8-oxa-3-aza-bicyclo[3.2.1]octane, 3,8-diaza-bicyclo[3.2.1]octane, 2,5-diaza-bicyclo[2.2.1]heptane, 3,8-diaza-bicyclo[3.2.1]octane, 3,9-diaza-bicyclo[4.2.1]nonane, 2,6-diaza-bicyclo[3.2.2]nonane, [1,4]oxaphosphinane 4-oxide, [1,4]azaphosphinane 4-oxide, [1,2]oxaphospholane 2-oxide, phosphinane 1-oxide, [1,3]azaphospholidine 3-oxide, and [1,3]oxaphospholane 3-oxide. A heterocycloalkyl group may contain, in addition to carbon atom(s), at least one nitrogen, oxygen, or sulfur. For example, a heterocycloalkyl group may contain, in addition to carbon atom(s), at least one nitrogen or oxygen. A heterocycloalkyl group may contain, in addition to carbon atom(s), at least one nitrogen. A heterocycloalkyl group may contain from 3 to 10 ring atoms. A heterocycloalkyl group may contain from 3 to 7 ring atoms. A heterocycloalkyl group may contain from 5 to 7 ring atoms, such as 5 ring atoms, 6 ring atoms, or 7 ring atoms. Unless otherwise indicated, the foregoing heterocycloalkyl groups can be C-attached or N-attached where such is possible and results in the creation of a stable structure. For example, piperidinyl can be piperidin-1-yl (N-attached) or piperidin-4-yl (C-attached).

“Heterocycloalkylene” or “heterocycloalkylene group” refers to diradical, 3-15 membered monocyclic, bicyclic, or tricyclic non-aromatic ring systems, which may be saturated or unsaturated, can be substituted or unsubstituted, may be bridged, spiro, and/or fused, and which contain, in addition to carbon atom(s), at least one heteroatom, such as nitrogen, oxygen, sulfur or phosphorus. Examples include, but are not limited to, the azridinylene isomers

The heterocycloalkylene group may contain, in addition to carbon atom(s), at least one nitrogen, oxygen, or sulfur. The heterocycloalkylene group may contain, in addition to carbon atom(s), at least one nitrogen or oxygen. The heterocycloalkylene group may contain, in addition to carbon atom(s), at least one nitrogen. For example, a heterocycloalkylene group may contain from 3 to 10 ring atoms; such as from 3 to 7 ring atoms. A heterocycloalkylene group may contain from 5 to 7 ring atoms, such as 5 ring atoms, 6 ring atoms, or 7 ring atoms. Unless otherwise indicated, the foregoing heterocycloalkylene groups can be C-attached and/or N-attached where such is possible and results in the creation of a stable structure. A heterocycloalkylene group can also include ring systems substituted on ring carbons with one or more —OH functional groups (which may further tautomerize to give a ring C═O group) and/or substituted on a ring sulfur atom by one (1) or two (2) oxygen atoms to give S═O or SO 2 groups, respectively, and/or substituted on a ring phosphorus by an oxygen atom to give P═O.

“Heterocycloalkylalkyl” or “heterocycloalkylalkyl group” refers to an alkyl group in which a hydrogen atom is replaced by a heterocycloalkyl group, wherein alkyl group and heterocycloalkyl group are as previously defined (i.e., heterocycloalkylalkyl-). Heteroycloalkylalkyl groups can be substituted or unsubstituted. Examples include, but are not limited to, pyrrolidinylmethyl (C 4 H 8 NCH 2 —).

“Pharmaceutically acceptable” refers to physiologically tolerable materials, which do not typically produce an allergic or other untoward reaction, such as gastric upset, dizziness and the like, when administered to a human.

“Pharmaceutical composition” refers to a composition that can be used to treat a disease, condition, or disorder in a human.

“Pseudohalogen” refers to —OCN, —SCN, —CF 3 , and —CN.

“Stable” or “chemically stable” refers to a compound that is sufficiently robust to be isolated to a useful degree of purity from a reaction mixture. The present invention is directed solely to the preparation of stable compounds. When lists of alternative substituents include members which, owing to valency requirements, chemical stability, or other reasons, cannot be used to substitute a particular group, the list is intended to be read in context to include those members of the list that are suitable for substituting the particular group. For example, R 1 can be C 1-6 alkyl optionally substituted by 1-13 R 19 ; when R 1 is methyl, the methyl group is optionally substituted by 1-3 R 19 .

“Therapeutically effective amount” refers to an amount of a compound sufficient to inhibit, halt, or cause an improvement in a disorder or condition being treated in a particular subject or subject population. For example in a human or other mammal, a therapeutically effective amount can be determined experimentally in a laboratory or clinical setting, or may be the amount required by the guidelines of the United States Food and Drug Administration, or equivalent foreign agency, for the particular disease and subject being treated. It should be appreciated that determination of proper dosage forms, dosage amounts, and routes of administration is within the level of ordinary skill in the pharmaceutical and medical arts.

›DETAILED DESCRIPTION OF THE INVENTION · 3 of 3

“Treatment” refers to the acute or prophylactic diminishment or alleviation of at least one symptom or characteristic associated or caused by a disorder being treated. For example, treatment can include diminishment of several symptoms of a disorder or complete eradication of a disorder.

II. Compounds

The compounds of the present invention are defined by the following numbered Embodiments. When a higher numbered Embodiment refers back to multiple previous lower numbered Embodiments in the alternative and contains a new limitation not present in the lower numbered Embodiments, the higher numbered Embodiment is intended to be an express description of each and every one of the alternatives. For example, if Embodiment 2 refers back to Embodiment 1 and contains a limitation not present in Embodiment 1, Embodiment 3 refers back Embodiments 1 or 2 and contains a limitation(s) not present in Embodiments 1 or 2, and Embodiment 4 refers back to any of Embodiments 1-3 and contains a limitation(s) not present in Embodiments 1, 2 or 3, then Embodiment 4 is intended to be an explicit description of a genus having the limitations of Embodiments 1 and 4, an explicit description of a genus having the limitations of Embodiments 1, 2 and 4, an explicit description of a genus having the limitations of Embodiments 1, 3 and 4, and an explicit description of a genus having the limitations of Embodiments 1, 2, 3 and 4. By way of example, if Embodiment 1 is a compound of formula (I) defining R 1 , R 2 and R 3 independently as alkyl or aryl, and Embodiment 2 is a compound of Embodiment 1 defining R 1 as alkyl, and Embodiment 3 is a compound of Embodiments 1 or 2 defining R 2 as alkyl, and Embodiment 4 is a compound of any of Embodiments 1-3 defining R 3 as alkyl, then Embodiment 4 is an explicit description of a genus having the limitations of Embodiments 1 and 4 (i.e., a compound of formula (I) in which R 1 and R 2 are alkyl or aryl, and R 3 is alkyl), an explicit description of a genus having the limitations of Embodiments 1, 2 and 4 (i.e., a compound of formula (I) in which R 2 is alkyl or aryl, and R 1 and R 3 are alkyl), an explicit description of a genus having the limitations of Embodiments 1, 3 and 4 (i.e., a compound of formula (I) in which R 1 is alkyl or aryl, and R 2 and R 3 are alkyl), and an explicit description of a genus having the limitations of Embodiments 1, 2, 3 and 4 (i.e., a compound of formula (I) in which R 1 , R 2 and R 3 are alkyl). It should be noted in this regard that when a higher numbered Embodiment refers to a lower numbered Embodiment and contains limitations for a group(s) not present in the lower numbered Embodiment, the higher numbered Embodiment should be interpreted in context to ignore the missing group(s). For example, if Embodiment 1 recites a compound of formula (I) in which A is NR 11 , O, or S, Embodiment 2 recites a compound of Embodiment 1 in which A is O or S, and Embodiment 3 recites a compound of Embodiments 1 or 2 in which R 11 is alkyl, then Embodiment 3 defines a genus having the limitations of Embodiments 1 and 3 and a genus having the limitation of Embodiments 1, 2 and 3. In the genus defined by the limitations of Embodiments 1, 2 and 3, A cannot be NR 11 ; therefore this genus should be interpreted to ignore and omit the Embodiment 3 definition of R 11 =alkyl.

›Embodiment 1 · 1 of 3

A compound of formula (I)

or a salt form thereof,

wherein

A is NR 11 , O, or S; M-Q-X is a group of formula

G is a group of formula

R 1 , R 2 , R 11 , and R 17 are independently chosen from H, C 1-6 alkyl optionally substituted by 1-13 R 19 , C 2-6 alkenyl optionally substituted by 1-11 R 19 , C 2-6 alkynyl optionally substituted by 1-9 R 19 , C 6-11 aryl optionally substituted by 1-11 R 19 , C 7-16 arylalkyl optionally substituted by 1-19 R 19 , C 3-11 cycloalkyl optionally substituted by 1-21 R 19 , C 4-17 cycloalkylalkyl optionally substituted by 1-32 R 19 , 3-15 membered heterocycloalkyl optionally substituted by 1-28 R 19 , 4-21 membered heterocycloalkylalkyl optionally substituted by 1-40 R 19 , 5-15 membered heteroaryl optionally substituted by 1-15 R 19 , 6-21 membered heteroarylalkyl optionally substituted by 1-27 R 19 , and —OR 20 ;

R 3 , R 4 , R 5 , R 6 , R 7 , R 8 , R 9 , R 10 , R 12 , R 13 , R 14 , R 15 , R 16 , and R 18 are independently chosen from H, C 1-6 alkyl optionally substituted by 1-13 R 19 , C 2-6 alkenyl optionally substituted by 1-11 R 19 , C 2-6 alkynyl optionally substituted by 1-9 R 19 , C 6-11 aryl optionally substituted by 1-11 R 19 , C 7-16 arylalkyl optionally substituted by 1-19 R 19 , C 3-11 cycloalkyl optionally substituted by 1-21 R 19 , C 4-17 cycloalkylalkyl optionally substituted by 1-32 R 19 , 3-15 membered heterocycloalkyl optionally substituted by 1-28 R 19 , 4-21 membered heterocycloalkylalkyl optionally substituted by 1-40 R 19 , 5-15 membered heteroaryl optionally substituted by 1-15 R 19 , 6-21 membered heteroarylalkyl optionally substituted by 1-27 R 19 , halogen, —CN, —C(═O)R 20 , —C(═O)OR 20 , —C(═O)NR 22 R 23 , —C(═O)C(═O)R 20 , —C(═NR 25 )R 20 , —C(═NR 25 )NR 22 R 23 , —C(═NOH)NR 22 R 23 , —C(═NOR 26 )R 20 , —C(═NNR 22 R 23 )R 20 , —C(═NNR 24 C(═O)R 21 )R 20 , —C(═NNR 24 C(═O)OR 21 )R 20 , —C(═S)NR 22 R 23 , —NC, —NO 2 , —NR 22 R 23 , —NR 24 NR 22 R 23 , —N═NR 24 , —NR 24 OR 26 , —NR 24 C(═O)R 20 , —NR 24 C(═O)C(═O)R 20 , —NR 24 C(═O)OR 21 , —NR 24 C(═O)C(═O)OR 21 , —NR 24 C(═O)NR 22 R 23 , —NR 24 C(═O)NR 24 C(═O)R 20 , —NR 24 C(═O)NR 24 C(═O)OR 20 , —NR 24 C(═NR 25 )NR 22 R 23 , —NR 24 C(═O)C(═O)NR 22 R 23 , —NR 24 C(═S)R 20 , —NR 24 C(═S)OR 20 , —NR 24 C(═S)NR 22 R 23 , —NR 24 S(═O) 2 R 21 , —NR 24 S(═O) 2 NR 22 R 23 , —NR 24 P(═O)R 28 R 28 , —NR 24 P(═O)(NR 22 R 23 )(NR 22 R 23 ), —NR 24 P(═O)(OR 20 )(OR 20 ), —NR 24 P(═O)(SR 20 )(SR 20 ), —OR 20 , —OCN, —OC(═O)R 20 , —OC(═O)NR 22 R 23 , —OC(═O)OR 20 , —OC(═NR 25 )NR 22 R 23 , —OS(═O)R 20 , —OS(═O) 2 R 20 , —OS(═O) 2 OR 20 , —OS(═O) 2 NR 22 R 23 , —OP(═O)R 28 R 28 , —OP(═O)(NR 22 R 23 )(NR 22 R 23 ), —OP(═O)(OR 20 )(OR 20 ), —OP(═O)(SR 20 )(SR 20 ), —Si(R 24 ) 3 , —SCN, —S(═O) n R 20 , —S(═O) 2 OR 20 , —SO 3 R 27 , —S(═O) 2 NR 22 R 23 , —S(═O)NR 22 R 23 , —SP(═O)R 28 R 28 , —SP(═O)(NR 22 R 23 )(NR 22 R 23 ), —SP(═O)(OR 20 )(OR 20 ), —SP(═O)(SR 20 )(SR 20 ), —P(═O)R 28 R 28 , —P(═O)(NR 22 R 23 )(NR 22 R 23 ), —P(═O)(OR 20 )(OR 20 ), and —P(═O)(SR 20 )(SR 20 );

any of R 1 and R 2 , R 1 and R 3 , R 1 and R 5 , R 1 and R 11 , R 4 and R 11 , R 6 and R 11 , and R 16 and R 17 can, together with the atoms linking them, form a 3-15 membered heterocycloalkyl optionally substituted by 1-28 R 19 or a 5-15 membered heteroaryl optionally substituted by 1-15 R 19 ;

any of R 3 and R 6 , R 7 and R 8 , R 9 and R 10 , R 12 and R 13 , and R 14 and R 15 can, together with the atoms linking them, form a C 6-11 aryl optionally substituted by 1-11 R 19 , C 3-11 cycloalkyl optionally substituted by 1-21 R 19 , 3-15 membered heterocycloalkyl optionally substituted by 1-28 R 19 or a 5-15 membered heteroaryl optionally substituted by 1-15 R 19 ;

R 3 and R 5 or R 4 and R 6 can together form a double bond;

any of R 3 and R 4 , and R 5 and R 6 can together form ═O, ═NR 20 , ═NOR 20 , or ═S;

R 19 at each occurrence is independently chosen from C 1-6 alkyl optionally substituted by 1-13 R 39 , C 2-6 alkenyl optionally substituted by 1-11 R 39 , C 2-6 alkynyl optionally substituted by 1-9 R 39 , C 6-11 aryl optionally substituted by 1-11 R 39 , C 7-16 arylalkyl optionally substituted by 1-19 R 39 , C 3-11 cycloalkyl optionally substituted by 1-21 R 39 , C 4-17 cycloalkylalkyl optionally substituted by 1-32 R 39 , 3-15 membered heterocycloalkyl optionally substituted by 1-28 R 39 , 4-21 membered heterocycloalkylalkyl optionally substituted by 1-40 R 39 , 5-15 membered heteroaryl optionally substituted by 1-15 R 39 , 6-21 membered heteroarylalkyl optionally substituted by 1-27 R 39 , halogen, —CN, —C(═O)R 30 , —C(═O)OR 30 , —C(═O)NR 32 R 33 , —C(═O)C(═O)R 30 , —C(═NR 35 )R 30 , —C(═NR 35 )NR 32 R 33 , —C(═NOH)NR 32 R 33 , —C(═NOR 36 )R 30 , —C(═NNR 32 R 33 )R 30 , —C(═NNR 34 C(═O)R 31) R 30 , —C(═NNR 34 C(═O)OR 31 )R 30 , —C(═S)NR 32 R 33 , —NC, —NO 2 , —NR 32 R 33 , —NR 34 NR 32 R 33 , —N═NR 34 , ═NR 30 , ═NOR 30 , —NR 34 OR 36 , —NR 34 C(═O)R 30 , —NR 34 C(═O)C(═O)R 30 , —NR 34 C(═O)OR 31 , —NR 34 C(═O)C(═O)OR 31 , —NR 34 C(═O)NR 32 R 33 , —NR 34 C(═O)NR 34 C(═O)R 30 , —NR 34 C(═O)NR 34 C(═O)OR 30 , —NR 34 C(═NR 35 )NR 32 R 33 , —NR 34 C(═O)C(═O)NR 32 R 33 , —NR 34 C(═S)R 30 , —NR 34 C(═S)OR 30 , —NR 34 C(═S)NR 32 R 33 , —NR 34 S(═O) 2 R 31 , —NR 34 S(═O) 2 NR 32 R 33 , —NR 34 P(═O)R 38 R 38 , —NR 34 P(═O)(NR 32 R 33 )(NR 32 R 33 ), —NR 34 P(═O)(OR 30 )(OR 30 ), —NR 34 P(═O)(SR 30 )(SR 30 ), —OR 30 , ═O, —OCN, —OC(═O)R 30 , —OC(═O)NR 32 R 33 , —OC(═O)OR 30 , —OC(═NR 35) NR 32 R 33 , —OS(═O)R 30 , —OS(═O) 2 R 30 , —OS(═O) 2 OR 30 , —OS(═O) 2 NR 32 R 33 , —OP(═O)R 38 R 38 , —OP(═O)(NR 32 R 33 )(NR 32 R 33 ), —OP(═O)(OR 30 )(OR 30 ), —OP(═O)(SR 30 )(SR 30 ), —Si(R 34 ) 3 , —SCN, ═S, —S(═O) n R 30 , —S(═O) 2 OR 30 , —SO 3 R 37 , —S(═O) 2 NR 32 R 33 , —S(═O)NR 32 R 33 , —SP(═O)R 38 R 38 , —SP(═O)(NR 32 R 33 )(NR 32 R 33 ), —SP(═O)(OR 30 )(OR 30 ), —SP(═O)(SR 30 )(SR 30 ), —P(═O)R 38 R 38 , —P(═O)(NR 32 R 33 )(NR 32 R 33 ), —P(═O)(OR 30 )(OR 30 ), and —P(═O)(SR 30 )(SR 30 );

R 20 , R 21 , R 24 , R 25 , R 26 , R 27 , R 30 , R 31 , R 34 , R 35 , R 36 and R 37 at each occurrence is independently chosen from H, C 1-6 alkyl optionally substituted by 1-13 R 49 , C 2-6 alkenyl optionally substituted by 1-11 R 49 , C 2-6 alkynyl optionally substituted by 1-9 R 49 , C 6-11 aryl optionally substituted by 1-11 R 49 , C 7-16 arylalkyl optionally substituted by 1-19 R 49 , C 3-11 cycloalkyl optionally substituted by 1-21 R 49 , C 4-17 cycloalkylalkyl optionally substituted by 1-32 R 49 , 3-15 membered heterocycloalkyl optionally substituted by 1-28 R 49 , 4-21 membered heterocycloalkylalkyl optionally substituted by 1-40 R 49 , 5-15 membered heteroaryl optionally substituted by 1-15 R 49 , and 6-21 membered heteroarylalkyl optionally substituted by 1-27 R 49 ; R 28 and R 38 at each occurrence is independently chosen from C 1-6 alkyl optionally substituted by 1-13 R 49 , C 2-6 alkenyl optionally substituted by 1-11 R 49 , C 2-6 alkynyl optionally substituted by 1-9 R 49 , C 6-11 aryl optionally substituted by 1-11 R 49 , C 7-16 arylalkyl optionally substituted by 1-19 R 49 , C 3-11 cycloalkyl optionally substituted by 1-21 R 49 , C 4-17 cycloalkylalkyl optionally substituted by 1-32 R 49 , 3-15 membered heterocycloalkyl optionally substituted by 1-28 R 49 , 4-21 membered heterocycloalkylalkyl optionally substituted by 1-40 R 49 , 5-15 membered heteroaryl optionally substituted by 1-15 R 49 , and 6-21 membered heteroarylalkyl optionally substituted by 1-27 R 49 ;

›Embodiment 1 · 2 of 3

R 22 , R 23 , R 32 and R 33 at each occurrence is independently chosen from H, C 1-6 alkyl optionally substituted by 1-13 R 59 , C 2-6 alkenyl optionally substituted by 1-11 R 59 , C 2-6 alkynyl optionally substituted by 1-9 R 59 , C 6-11 aryl optionally substituted by 1-11 R 59 , C 7-16 arylalkyl optionally substituted by 1-19 R 59 , C 3-11 cycloalkyl optionally substituted by 1-21 R 59 , C 4-17 cycloalkylalkyl optionally substituted by 1-32 R 59 , 3-15 membered heterocycloalkyl optionally substituted by 1-28 R 59 , 4-21 membered heterocycloalkylalkyl optionally substituted by 1-40 R 59 , 5-15 membered heteroaryl optionally substituted by 1-15 R 59 , and 6-21 membered heteroarylalkyl optionally substituted by 1-27 R 59 ; or any R 22 and R 23 and/or R 32 and R 33 may form, together with the nitrogen atom to which they are attached, a 3-15 membered heterocycloalkyl optionally substituted by 1-28 R 69 or a 5-15 membered heteroaryl optionally substituted by 1-15 R 69 ;

R 39 , R 49 , R 59 and R 69 at each occurrence is independently chosen from C 1-6 alkyl optionally substituted by 1-13 R 79 , C 2-6 alkenyl optionally substituted by 1-11 R 79 , C 2-6 alkynyl optionally substituted by 1-9 R 79 , C 6-11 aryl optionally substituted by 1-11 R 79 , C 7-16 arylalkyl optionally substituted by 1-19 R 79 , C 3-11 cycloalkyl optionally substituted by 1-21 R 79 , C 4-17 cycloalkylalkyl optionally substituted by 1-32 R 79 , 3-15 membered heterocycloalkyl optionally substituted by 1-28 R 79 , 4-21 membered heterocycloalkylalkyl optionally substituted by 1-40 R 79 , 5-15 membered heteroaryl optionally substituted by 1-15 R 79 , 6-21 membered heteroarylalkyl optionally substituted by 1-27 R 79 , halogen, —CN, —C(═O)R 70 , —C(═O)OR 70 , —C(═O)NR 72 R 73 , —C(═O)C(═O)R 70 , —C(═NR 75 )R 70 , —C(═NR 75 )NR 72 R 73 , —C(═NOH)NR 72 R 73 , —C(═NOR 76 )R 70 , —C(═NNR 72 R 73 )R 70 , —C(═NNR 74 C(═O)R 71 )R 70 , —C(═NNR 74 C(═O)OR 71 )R 70 , —C(═S)NR 72 R 73 , —NC, —NO 2 , —NR 72 R 73 , —NR 74 NR 72 R 73 , —N═NR 74 , ═NR 70 , ═NOR 70 , —NR 74 OR 76 , —NR 74 C(═O)R 70 , —NR 74 C(═O)C(═O)R 70 , —NR 74 C(═O)OR 71 , —NR 74 C(═O)C(═O)OR 71 , —NR 74 C(═O)NR 72 R 73 , —NR 74 C(═O)NR 74 C(═O)R 70 , —NR 74 C(═O)NR 74 C(═O)OR 70 , —NR 74 C(═NR 75 )NR 72 R 73 , —NR 74 C(═O)C(═O)NR 72 R 73 , —NR 74 C(═S)R 70 , —NR 74 C(═S)OR 70 , —NR 74 C(═S)NR 72 R 73 , —NR 74 S(═O) 2 R 71 , —NR 74 S(═O) 2 NR 72 R 73 , —NR 74 P(═O)R 78 R 78 , —NR 74 P(═O)(NR 72 R 73 )(NR 72 R 73 ), —NR 74 P(═O)(OR 70 )(OR 70 ), —NR 74 P(═O)(SR 70 )(SR 70 ), —OR 70 , ═O, —OCN, —OC(═O)R 70 , —OC(═O)NR 72 R 73 , —OC(═O)OR 70 , —OC(═NR 75 )NR 72 R 73 , —OS(═O)R 70 , —OS(═O) 2 R 70 , —OS(═O) 2 OR 70 , —OS(═O) 2 NR 72 R 73 , —OP(═O)R 78 R 78 , —OP(═O)(NR 72 R 73 )(NR 72 R 73 ), —OP(═O)(OR 70 )(OR 70 ), —OP(═O)(SR 70 )(SR 70 ), —Si(R 74 ) 3 , —SCN, ═S, —S(═O) n R 70 , —S(═O) 2 OR 70 , —SO 3 R 77 , —S(═O) 2 NR 72 R 73 , —S(═O)NR 72 R 73 , —SP(═O)R 78 R 78 , —SP(═O)(NR 72 R 73 )(NR 72 R 73 ), —SP(═O)(OR 70 )(OR 70 ), —SP(═O)(SR 70 )(SR 70 ), —P(═O)R 78 R 78 , —P(═O)(NR 72 R 73 )(NR 72 R 73 ), —P(═O)(OR 70 )(OR 70 ), and —P(═O)(SR 70 )(SR 70 );

R 70 , R 71 , R 74 , R 75 , R 76 and R 77 at each occurrence is independently chosen from H, C 1-6 alkyl optionally substituted by 1-13 R 89 , C 2-6 alkenyl optionally substituted by 1-11 R 89 , C 2-6 alkynyl optionally substituted by 1-9 R 89 , C 6-11 aryl optionally substituted by 1-11 R 89 , C 7-16 arylalkyl optionally substituted by 1-19 R 89 , C 3-11 cycloalkyl optionally substituted by 1-21 R 89 , C 4-17 cycloalkylalkyl optionally substituted by 1-32 R 89 , 3-15 membered heterocycloalkyl optionally substituted by 1-28 R 89 , 4-21 membered heterocycloalkylalkyl optionally substituted by 1-40 R 89 , 5-15 membered heteroaryl optionally substituted by 1-15 R 89 , and 6-21 membered heteroarylalkyl optionally substituted by 1-27 R 89 ;

R 72 and R 73 at each occurrence is independently chosen from H, C 1-6 alkyl optionally substituted by 1-13 R 99 , C 2-6 alkenyl optionally substituted by 1-11 R 99 , C 2-6 alkynyl optionally substituted by 1-9 R 99 , C 6-11 aryl optionally substituted by 1-11 R 99 , C 7-16 arylalkyl optionally substituted by 1-19 R 99 , C 3-11 cycloalkyl optionally substituted by 1-21 R 99 , C 4-17 cycloalkylalkyl optionally substituted by 1-32 R 99 , 3-15 membered heterocycloalkyl optionally substituted by 1-28 R 99 , 4-21 membered heterocycloalkylalkyl optionally substituted by 1-40 R 99 , 5-15 membered heteroaryl optionally substituted by 1-15 R 99 , and 6-21 membered heteroarylalkyl optionally substituted by 1-27 R 99 ; or any R 72 and R 73 may form, together with the nitrogen atom to which they are attached, a 3-15 membered heterocycloalkyl optionally substituted by 1-28 R 109 or a 5-15 membered heteroaryl optionally substituted by 1-15 R 109 ;

R 78 at each occurrence is independently chosen from C 1-6 alkyl optionally substituted by 1-13 R 89 , C 2-6 alkenyl optionally substituted by 1-11 R 89 , C 2-6 alkynyl optionally substituted by 1-9 R 89 , C 6-11 aryl optionally substituted by 1-11 R 89 , C 7-16 arylalkyl optionally substituted by 1-19 R 89 , C 3-11 cycloalkyl optionally substituted by 1-21 R 89 , C 4-17 cycloalkylalkyl optionally substituted by 1-32 R 89 , 3-15 membered heterocycloalkyl optionally substituted by 1-28 R 89 , 4-21 membered heterocycloalkylalkyl optionally substituted by 1-40 R 89 , 5-15 membered heteroaryl optionally substituted by 1-15 R 89 , and 6-21 membered heteroarylalkyl optionally substituted by 1-27 R 89 ;

R 79 , R 89 , R 99 and R 109 at each occurrence is independently chosen from C 1-6 alkyl optionally substituted by 1-13 halogen, C 2-6 alkenyl, C 2-6 alkynyl, C 6-11 aryl, C 7-16 arylalkyl, C 3-11 cycloalkyl, C 4-17 cycloalkylalkyl, 3-15 membered heterocycloalkyl, 4-21 membered heterocycloalkylalkyl, 5-15 membered heteroaryl, 6-21 membered heteroarylalkyl, halogen, —CN, —C(═O)R 110 , —C(═O)OR 110 , —C(═O)NR 110 R 110 , —C(═O)C(═O)R 110 , —C(═NR 110 )R 110 , —C(═NR 110 )NR 110 R 110 , —C(═NOH)NR 110 OR 110 , —C(═NOR 110 )R 110 , —C(═NNR 110 R 110 )R 110 , —C(═NNR 110 C(═O)R 110 )R 110 , —C(═NNR 110 C(═O)OR 110 )R 110 , —C(═S)NR 110 R 110 , —NC, —NO 2 , —NR 110 R 110 , —NR 110 NR 110 R 110 , —N═NR 110 , ═NR 110 , ═NOR 110 , —NR 110 OR 110 , —NR 110 C(═O)R 110 , —NR 110 C(═O)C(═O)R 110 , —NR 110 C(═O)OR 110 , —NR 110 C(═O)C(═O)OR 110 , —NR 110 C(═O)NR 110 R 110 , —NR 110 C(═O)NR 110 C(═O)R 110 , —NR 110 C(═O)NR 110 C(═O)OR 110 , —NR 110 C(═NR 110 )NR 110 R 110 , —NR 110 C(═O)C(═O)NR 110 R 110 , —NR 110 C(═S)R 110 , —NR 110 C(═S)OR 110 , —NR 110 C(═S)NR 110 R 110 , —NR 110 S(═O) 2 R 110 , —NR 110 S(═O) 2 NR 110 R 110 , —NR 110 P(═O)R 111 R 111 , —NR 110 P(═O)(NR 110 R 110 )(NR 110 R 110 ), —NR 110 P(═O)(OR 110 )(OR 110 ), —NR 110 P(═O)(SR 110 )(SR 110 ), —OR 110 , ═O, —OCN, —OC(═O)R 110 , —OC(═O)NR 110 R 110 , —OC(═O)OR 110 , —OC(═NR 110 )NR 110 R 110 , —OS(═O)R 110 , —OS(═O) 2 R 110 , —OS(═O) 2 OR 110 , —OS(═O) 2 NR 110 R 110 , —OP(═O)R 111 R 111 , —OP(═O)(NR 110 R 110 )(NR 110 R 110 ), —OP(═O)(OR 110 )(OR 110 ), —OP(═O)(SR 110 )(SR 110 ), —Si(R 110 ) 3 , —SCN, ═S, —S(═O) n R 110 , —S(═O) 2 OR 110 , —SO 3 R 110 , —S(═O) 2 NR 110 R 110 , —S(═O)NR 110 R 110 , —SP(═O)R 111 R 111 , —SP(═O)(NR 110 R 110 )(NR 110 R 110 ), —SP(═O)(OR 110 )(OR 110 ), —SP(═O)(SR 110 )(SR 110 ), —P(═O)R 111 R 111 , —P(═O)(NR 110 R 110 )(NR 110 R 110 ), —P(═O)(OR 110 )(OR 110 ), and —P(═O)(SR 110 )(SR 110 );

›Embodiment 1 · 3 of 3

R 110 at each occurrence is independently chosen from H, C 1-6 alkyl and C 1-6 -haloalkyl;

R 111 at each occurrence is independently chosen from C 1-6 alkyl and C 1-6 -haloalkyl; and

n at each occurrence is independently chosen from 0, 1, and 2.

›Embodiment 2

The compound of Embodiment 1, wherein A is NR 11 , O, or S.

›Embodiment 3

The compound of Embodiment 1, wherein A is NR 11 or O.

›Embodiment 4

The compound of Embodiment 1, wherein A is NR 11 .

›Embodiment 5.1

The compound of Embodiment 1, wherein A is O.

›Embodiment 5.2

The compound of Embodiment 1, wherein A is S.

›Embodiment 6

The compound of any of Embodiments 1-5, wherein M-Q-X is a group of formula or

›Embodiment 7

The compound of any of Embodiments 1-5, wherein M-Q-X is a group of formula

and the compound of formula (I) is a compound of formula (Ia)

›Embodiment 8

The compound of any of Embodiments 1-5, wherein M-Q-X is a group of formula

and the compound of formula (I) is a compound of formula (Ib)

›Embodiment 9

The compound of any of Embodiments 1-8, wherein G is a group of formula

›Embodiment 10

The compound of any of Embodiments 1-8, wherein G is a group of formula

›Embodiment 11

The compound of any of Embodiments 1-8, wherein G is a group of formula

and the compound of formula (I) is a compound of formula (Ic)

›Embodiment 12

The compound of any of Embodiments 1-8, wherein G is a group of formula

and the compound of formula (I) is a compound of formula (Id)

›Embodiment 13

The compound of any of Embodiments 1-8, wherein G is a group of formula

and the compound of formula (I) is a compound of formula (Ie)

›Embodiment 14

The compound of any of Embodiments 1-5, wherein M-Q-X is a group of formula

G is a group of formula

and the compound of formula (I) is a compound of formula (If)

›Embodiment 15

The compound of any of Embodiments 1-5, wherein M-Q-X is a group of formula

G is a group of formula

and the compound of formula (I) is a compound of formula (Ig)

›Embodiment 16

The compound of any of Embodiments 1-5, wherein M-Q-X is a group of formula

G is a group of formula

and the compound of formula (I) is a compound of formula (Ih)

›Embodiment 17

The compound of any of Embodiments 1-5, wherein M-Q-X is a group of formula

G is a compound of formula

and the compound of formula (I) is a compound of formula (Ii)

›Embodiment 18

The compound of any of Embodiments 1-5, wherein M-Q-X is a group of formula

G is a group of formula

and the compound of formula (I) is a compound of formula (Ij).

›Embodiment 19

The compound of any of Embodiments 1-5, wherein M-Q-X is a group of formula

G is a group of formula

and the compound of formula (I) is a compound of formula (Ik)

›Embodiment 20

The compound of any of Embodiments 1-19, wherein R 1 , R 2 , and R 11 are independently chosen from H, C 1-6 alkyl optionally substituted by 1-13 R 19 , C 2-6 alkenyl optionally substituted by 1-11 R 19 , C 2-6 alkynyl optionally substituted by 1-9 R 19 , C 6-11 aryl optionally substituted by 1-11 R 19 , C 7-16 arylalkyl optionally substituted by 1-19 R 19 , C 3-11 cycloalkyl optionally substituted by 1-21 R 19 , C 4-17 cycloalkylalkyl optionally substituted by 1-32 R 19 , 3-15 membered heterocycloalkyl optionally substituted by 1-28 R 19 , 4-21 membered heterocycloalkylalkyl optionally substituted by 1-40 R 19 , 5-15 membered heteroaryl optionally substituted by 1-15 R 19 , 6-21 membered heteroarylalkyl optionally substituted by 1-27 R 19 , and —OR 20 ; R 3 , R 4 , R 5 , and R 6 are independently chosen from H, C 1-6 alkyl optionally substituted by 1-13 R 19 , C 2-6 alkenyl optionally substituted by 1-11 R 19 , C 2-6 alkynyl optionally substituted by 1-9 R 19 , C 6-11 aryl optionally substituted by 1-11 R 19 , C 7-16 arylalkyl optionally substituted by 1-19 R 19 , C 3-11 cycloalkyl optionally substituted by 1-21 R 19 , C 4-17 cycloalkylalkyl optionally substituted by 1-32 R 19 , 3-15 membered heterocycloalkyl optionally substituted by 1-28 R 19 , 4-21 membered heterocycloalkylalkyl optionally substituted by 1-40 R 19 , 5-15 membered heteroaryl optionally substituted by 1-15 R 19 , 6-21 membered heteroarylalkyl optionally substituted by 1-27 R 19 , halogen, —CN, —C(═O)R 20 , —C(═O)OR 20 , —C(═O)NR 22 R 23 , —C(═O)C(═O)R 20 , —C(═NR 25 )R 20 , —C(═NR 25 )NR 22 R 23 , —C(═NOH)NR 22 R 23 , —C(═NOR 26 )R 20 , —C(═NNR 22 R 23 )R 20 , —C(═NNR 24 C(═O)R 21 )R 20 , —C(═NNR 24 C(═O)OR 21 )R 20 , —C(═S)NR 22 R 23 , —NC, —NO 2 , —NR 22 R 23 , —NR 24 NR 22 R 23 , —N═NR 24 , —NR 24 OR 26 , —NR 24 C(═O)R 20 , —NR 24 C(═O)C(═O)R 20 , —NR 24 C(═O)OR 21 , —NR 24 C(═O)C(═O)OR 21 , —NR 24 C(═O)NR 22 R 23 , —NR 24 C(═O)NR 24 C(═O)R 20 , —NR 24 C(═O)NR 24 C(═O)OR 20 , —NR 24 C(═NR 25 )NR 22 R 23 , —NR 24 C(═O)C(═O)NR 22 R 23 , —NR 24 C(═S)R 20 , —NR 24 C(═S)OR 20 , —NR 24 C(═S)NR 22 R 23 , —NR 24 S(═O) 2 R 21 , —NR 24 S(═O) 2 NR 22 R 23 , —NR 24 P(═O)R 28 R 28 , —NR 24 P(═O)(NR 22 R 23 )(NR 22 R 23 ), —NR 24 P(═O)(OR 20 )(OR 20 ), —NR 24 P(═O)(SR 20 )(SR 20 ), —OR 20 , —OCN, —OC(═O)R 20 , —OC(═O)NR 22 R 23 , —OC(═O)OR 20 , —OC(═NR 25 )NR 22 R 23 , —OS(═O)R 20 , —OS(═O) 2 R 20 , —OS(═O) 2 OR 20 , —OS(═O) 2 NR 22 R 23 , —OP(═O)R 28 R 28 , —OP(═O)(NR 22 R 23 )(NR 22 R 23 ), —OP(═O)(OR 20 )(OR 20 ), —OP(═O)(SR 20 )(SR 20 ), —Si(R 24 ) 3 , —SCN, —S(═O) n R 20 , —S(═O) 2 OR 20 , —SO 3 R 27 , —S(═O) 2 NR 22 R 23 , —S(═O)NR 22 R 23 , —SP(═O)R 28 R 28 , —SP(═O)(NR 22 R 23 )(NR 22 R 23 ), —SP(═O)(OR 20 )(OR 20 ), —SP(═O)(SR 20 )(SR 20 ), —P(═O)R 28 R 28 , —P(═O)(NR 22 R 23 )(NR 22 R 23 ), —P(═O)(OR 20 )(OR 20 ), and —P(═O)(SR 20 )(SR 20 ); alternatively, R 3 and R 6 can, together with the atoms linking them, form a C 6-11 aryl optionally substituted by 1-11 R 19 , C 3-11 cycloalkyl optionally substituted by 1-21 R 19 , 3-15 membered heterocycloalkyl optionally substituted by 1-28 R 19 or a 5-15 membered heteroaryl optionally substituted by 1-15 R 19 ; alternatively R 3 and R 5 or R 4 and R 6 can together form a double bond; alternatively any of R 3 and R 4 , and R 5 and R 6 can together form ═O, ═NR 20 , ═NOR 20 , or ═S; and alternatively any of R 1 and R 2 , R 1 and R 3 , R 1 and R 5 , R 1 and R 11 , R 4 and R 11 , and R 6 and R 11 can, together with the atoms linking them, form a 3-15 membered heterocycloalkyl optionally substituted by 1-28 R 19 or a 5-15 membered heteroaryl optionally substituted by 1-15 R 19 .

›Embodiment 21

The compound of any of Embodiments 1-19, wherein R 1 , R 2 , and R 11 are independently chosen from H, C 1-6 alkyl optionally substituted by 1-13 R 19 , C 2-6 alkenyl optionally substituted by 1-11 R 19 , C 2-6 alkynyl optionally substituted by 1-9 R 19 , C 6-11 aryl optionally substituted by 1-11 R 19 , C 7-16 arylalkyl optionally substituted by 1-19 R 19 , C 3-11 cycloalkyl optionally substituted by 1-21 R 19 , C 4-17 cycloalkylalkyl optionally substituted by 1-32 R 19 , 3-15 membered heterocycloalkyl optionally substituted by 1-28 R 19 , 4-21 membered heterocycloalkylalkyl optionally substituted by 1-40 R 19 , 5-15 membered heteroaryl optionally substituted by 1-15 R 19 , 6-21 membered heteroarylalkyl optionally substituted by 1-27 R 19 , and —OR 20 ; R 3 , R 4 , R 5 , and R 6 are independently chosen from H, C 1-6 alkyl optionally substituted by 1-13 R 19 , C 2-6 alkenyl optionally substituted by 1-11 R 19 , C 2-6 alkynyl optionally substituted by 1-9 R 19 , C 6-11 aryl optionally substituted by 1-11 R 19 , C 7-16 arylalkyl optionally substituted by 1-19 R 19 , C 3-11 cycloalkyl optionally substituted by 1-21 R 19 , C 4-17 cycloalkylalkyl optionally substituted by 1-32 R 19 , 3-15 membered heterocycloalkyl optionally substituted by 1-28 R 19 , 4-21 membered heterocycloalkylalkyl optionally substituted by 1-40 R 19 , 5-15 membered heteroaryl optionally substituted by 1-15 R 19 , 6-21 membered heteroarylalkyl optionally substituted by 1-27 R 19 , halogen, —CN, —C(═O)R 20 , —C(═O)OR 20 , —C(═O)NR 22 R 23 , —C(═O)C(═O)R 20 , —C(═NR 25 )R 20 , —C(═NR 25 )NR 22 R 23 , —C(═NOH)NR 22 R 23 , —C(═NOR 26 )R 20 , —C(═NNR 22 R 23 )R 20 , —C(═NNR 24 C(═O)R 21 )R 20 , —C(═NNR 24 C(═O)OR 21 )R 20 , —C(═S)NR 22 R 23 , —NC, —NO 2 , —NR 22 R 23 , —NR 24 NR 22 R 23 , —N═NR 24 , —NR 24 OR 26 , —NR 24 C(═O)R 20 , —NR 24 C(═O)C(═O)R 20 , —NR 24 C(═O)OR 21 , —NR 24 C(═O)C(═O)OR 21 , —NR 24 C(═O)NR 22 R 23 , —NR 24 C(═O)NR 24 C(═O)R 20 , —NR 24 C(═O)NR 24 C(═O)OR 20 , —NR 24 C(═NR 25 )NR 22 R 23 , —NR 24 C(═O)C(═O)NR 22 R 23 , —NR 24 C(═S)R 20 , —NR 24 C(═S)OR 20 , —NR 24 C(═S)NR 22 R 23 , —NR 24 S(═O) 2 R 21 , —NR 24 S(═O) 2 NR 22 R 23 , —NR 24 P(═O)R 28 R 28 , —NR 24 P(═O)(NR 22 R 23 )(NR 22 R 23 ), —NR 24 P(═O)(OR 20 )(OR 20 ), —NR 24 P(═O)(SR 20 )(SR 20 ), —OR 20 , —OCN, —OC(═O)R 20 , —OC(═O)NR 22 R 23 , —OC(═O)OR 20 , —OC(═NR 25 )NR 22 R 23 , —OS(═O)R 20 , —OS(═O) 2 R 20 , —OS(═O) 2 OR 20 , —OS(═O) 2 NR 22 R 23 , —OP(═O)R 28 R 28 , —OP(═O)(NR 22 R 23 )(NR 22 R 23 ), —OP(═O)(OR 20 )(OR 20 ), —OP(═O)(SR 20 )(SR 20 ), —Si(R 24 ) 3 , —SCN, —S(═O) n R 20 , —S(═O) 2 OR 20 , —SO 3 R 27 , —S(═O) 2 NR 22 R 23 , —S(═O)NR 22 R 23 , —SP(═O)R 28 R 28 , —SP(═O)(NR 22 R 23 )(NR 22 R 23 ), —SP(═O)(OR 20 )(OR 20 ), —SP(═O)(SR 20 )(SR 20 ), —P(═O)R 28 R 28 , —P(═O)(NR 22 R 23 )(NR 22 R 23 ), —P(═O)(OR 20 )(OR 20 ), and —P(═O)(SR 20 )(SR 20 ); alternatively, R 3 and R 6 can, together with the atoms linking them, form a C 6-10 aryl optionally substituted by 1-6 R 19 , C 3-10 cycloalkyl optionally substituted by 1-6 R 19 , 3-10 membered heterocycloalkyl optionally substituted by 1-6 R 19 or a 5-10 membered heteroaryl optionally substituted by 1-6 R 19 ; alternatively R 3 and R 5 or R 4 and R 6 can together form a double bond; alternatively any of R 3 and R 4 , and R 5 and R 6 can together form ═O; and alternatively any of R 1 and R 2 , R 1 and R 3 , R 1 and R 5 , R 1 and R 11 , R 4 and R 11 , and R 6 and R 11 can, together with the atoms linking them, form a 3-15 membered heterocycloalkyl optionally substituted by 1-22 R 19 or a 5-15 membered heteroaryl optionally substituted by 1-15 R 19 .

›Embodiment 22

The compound of any of Embodiments 1-19, wherein R 1 , R 2 , and R 11 are independently chosen from H, C 1-6 alkyl optionally substituted by 1-13 R 19 , C 2-6 alkenyl optionally substituted by 1-11 R 19 , C 2-6 alkynyl optionally substituted by 1-9 R 19 , C 6-11 aryl optionally substituted by 1-11 R 19 , C 7-16 arylalkyl optionally substituted by 1-19 R 19 , C 3-11 cycloalkyl optionally substituted by 1-21 R 19 , C 4-17 cycloalkylalkyl optionally substituted by 1-32 R 19 , 3-15 membered heterocycloalkyl optionally substituted by 1-28 R 19 , 4-21 membered heterocycloalkylalkyl optionally substituted by 1-40 R 19 , 5-15 membered heteroaryl optionally substituted by 1-15 R 19 , 6-21 membered heteroarylalkyl optionally substituted by 1-27 R 19 , and —OR 20 ; R 3 , R 4 , R 5 , and R 6 are independently chosen from H, C 1-6 alkyl optionally substituted by 1-13 R 19 , C 2-6 alkenyl optionally substituted by 1-11 R 19 , C 2-6 alkynyl optionally substituted by 1-9 R 19 , C 6-11 aryl optionally substituted by 1-11 R 19 , C 7-16 arylalkyl optionally substituted by 1-19 R 19 , C 3-11 cycloalkyl optionally substituted by 1-21 R 19 , C 4-17 cycloalkylalkyl optionally substituted by 1-32 R 19 , 3-15 membered heterocycloalkyl optionally substituted by 1-28 R 19 , 4-21 membered heterocycloalkylalkyl optionally substituted by 1-40 R 19 , 5-15 membered heteroaryl optionally substituted by 1-15 R 19 , 6-21 membered heteroarylalkyl optionally substituted by 1-27 R 19 , halogen, —CN, —C(═O)R 20 , —C(═O)OR 20 , —C(═O)NR 22 R 23 , —NC, —NO 2 , —NR 22 R 23 , —NR 24 OR 26 , —NR 24 C(═O)R 20 , —NR 24 C(═O)OR 21 , —NR 24 C(═O)NR 22 R 23 , —NR 24 S(═O) 2 R 21 , —NR 24 S(═O) 2 NR 22 R 23 , —OR 20 , —OCN, —OC(═O)R 20 , —OC(═O)NR 22 R 23 , —OC(═O)OR 20 , —OS(═O)R 20 , —OS(═O) 2 R 20 , —OS(═O) 2 OR 20 , —OS(═O) 2 NR 22 R 23 , —OP(═O)R 28 R 28 , —OP(═O)(OR 20 )(OR 20 ), —Si(R 24 ) 3 , —SCN, —S(═O) n R 20 , —S(═O) 2 OR 20 , —SO 3 R 27 , —S(═O) 2 NR 22 R 23 , —S(═O)NR 22 R 23 , —P(═O)R 28 R 28 , —P(═O)(NR 22 R 23 )(NR 22 R 23 ), and —P(═O)(OR 20 )(OR 20 ); alternatively, R 3 and R 6 can, together with the atoms linking them, form a C 6-10 aryl optionally substituted by 1-6 R 19 , C 3-10 cycloalkyl optionally substituted by 1-6 R 19 , 3-10 membered heterocycloalkyl optionally substituted by 1-6 R 19 or a 5-10 membered heteroaryl optionally substituted by 1-6 R 19 ; alternatively R 3 and R 5 or R 4 and R 6 can together form a double bond; alternatively any of R 3 and R 4 , and R 5 and R 6 can together form ═O; and alternatively any of R 1 and R 2 , R 1 and R 3 , R 1 and R 5 , R 1 and R 11 , R 4 and R 11 , and R 6 and R 11 can, together with the atoms linking them, form a 3-15 membered heterocycloalkyl optionally substituted by 1-22 R 19 or a 5-15 membered heteroaryl optionally substituted by 1-15 R 19 .

›Embodiment 23

The compound of any of Embodiments 1-19, wherein R 1 , R 2 , and R 11 are independently chosen from H, C 1-6 alkyl optionally substituted by 1-6 R 19 , C 2-6 alkenyl optionally substituted by 1-6 R 19 , C 2-6 alkynyl optionally substituted by 1-6 R 19 , C 6-11 aryl optionally substituted by 1-6 R 19 , C 7-16 arylalkyl optionally substituted by 1-6 R 19 , C 3-11 cycloalkyl optionally substituted by 1-6 R 19 , C 4-17 cycloalkylalkyl optionally substituted by 1-6 R 19 , 3-15 membered heterocycloalkyl optionally substituted by 1-6 R 19 , 4-21 membered heterocycloalkylalkyl optionally substituted by 1-6 R 19 , 5-15 membered heteroaryl optionally substituted by 1-6 R 19 , 6-21 membered heteroarylalkyl optionally substituted by 1-6 R 19 , and —OR 20 ; R 3 , R 4 , R 5 , and R 6 are independently chosen from H, C 1-6 alkyl optionally substituted by 1-6 R 19 , C 2-6 alkenyl optionally substituted by 1-6 R 19 , C 2-6 alkynyl optionally substituted by 1-6 R 19 , C 6-11 aryl optionally substituted by 1-6 R 19 , C 7-16 arylalkyl optionally substituted by 1-6 R 19 , C 3-10 cycloalkyl optionally substituted by 1-6 R 19 , C 4-17 cycloalkylalkyl optionally substituted by 1-6 R 19 , 3-15 membered heterocycloalkyl optionally substituted by 1-6 R 19 , 4-21 membered heterocycloalkylalkyl optionally substituted by 1-6 R 19 , 5-15 membered heteroaryl optionally substituted by 1-6 R 19 , 6-21 membered heteroarylalkyl optionally substituted by 1-6 R 19 , halogen, —CN, —C(═O)R 20 , —C(═O)OR 20 , —C(═O)NR 22 R 23 , —NC, —NO 2 , —NR 22 R 23 , —NR 24 OR 26 , —NR 24 C(═O)R 20 , —NR 24 C(═O)OR 21 , —NR 24 C(═O)NR 22 R 23 , —NR 24 S(═O) 2 R 21 , —NR 24 S(═O) 2 NR 22 R 23 , —OR 20 , —OCN, —OC(═O)R 20 , —OC(═O)NR 22 R 23 , —OC(═O)OR 20 , —OS(═O)R 20 , —OS(═O) 2 R 20 , —OS(═O) 2 OR 20 , —OS(═O) 2 NR 22 R 23 , —OP(═O)R 28 R 28 , —OP(═O)(OR 20 )(OR 20 ), —Si(R 24 ) 3 , —SCN, —S(═O) n R 20 , —S(═O) 2 OR 20 , —SO 3 R 27 , —S(═O) 2 NR 22 R 23 , —S(═O)NR 22 R 23 , —P(═O)R 28 R 28 , —P(═O)(NR 22 R 23 )(NR 22 R 23 ), and —P(═O)(OR 20 )(OR 20 ); alternatively, R 3 and R 6 can, together with the atoms linking them, form a C 6-10 aryl optionally substituted by 1-6 R 19 , C 3-10 cycloalkyl optionally substituted by 1-6 R 19 , 3-10 membered heterocycloalkyl optionally substituted by 1-6 R 19 or a 5-10 membered heteroaryl optionally substituted by 1-6 R 19 ; alternatively R 3 and R 5 or R 4 and R 6 can together form a double bond; alternatively any of R 3 and R 4 , and R 5 and R 6 can together form ═O; and alternatively any of R 1 and R 2 , R 1 and R 3 , R 1 and R 5 , R 1 and R 11 , R 4 and R 11 , and R 6 and R 11 can, together with the atoms linking them, form a 5-15 membered heterocycloalkyl optionally substituted by 1-6 R 19 or a 5-15 membered heteroaryl optionally substituted by 1-6 R 19 .

›Embodiment 24

The compound of any of Embodiments 1-19, wherein R 1 , R 2 , and R 11 are independently chosen from H, C 1-6 alkyl optionally substituted by 1-3 R 19 , C 2-6 alkenyl optionally substituted by 1-3 R 19 , C 2-6 alkynyl optionally substituted by 1-3 R 19 , C 6-11 aryl optionally substituted by 1-3 R 19 , C 7-16 arylalkyl optionally substituted by 1-3 R 19 , C 3-11 cycloalkyl optionally substituted by 1-3 R 19 , C 4-17 cycloalkylalkyl optionally substituted by 1-3 R 19 , 3-15 membered heterocycloalkyl optionally substituted by 1-3 R 19 , 4-21 membered heterocycloalkylalkyl optionally substituted by 1-3 R 19 , 5-15 membered heteroaryl optionally substituted by 1-3 R 19 , 6-21 membered heteroarylalkyl optionally substituted by 1-3 R 19 , and —OR 20 ; R 3 , R 4 , R 5 , and R 6 are independently chosen from H, C 1-6 alkyl optionally substituted by 1-3 R 19 , C 2-6 alkenyl optionally substituted by 1-3 R 19 , C 2-6 alkynyl optionally substituted by 1-3 R 19 , C 6-11 aryl optionally substituted by 1-3 R 19 , C 7-16 arylalkyl optionally substituted by 1-3 R 19 , C 3-11 cycloalkyl optionally substituted by 1-3 R 19 , C 4-17 cycloalkylalkyl optionally substituted by 1-3 R 19 , 3-15 membered heterocycloalkyl optionally substituted by 1-3 R 19 , 4-21 membered heterocycloalkylalkyl optionally substituted by 1-3 R 19 , 5-15 membered heteroaryl optionally substituted by 1-3 R 19 , 6-21 membered heteroarylalkyl optionally substituted by 1-3 R 19 , halogen, —CN, —C(═O)R 20 , —C(═O)OR 20 , —C(═O)NR 22 R 23 , —NC, —NO 2 , —NR 22 R 23 , —NR 24 OR 26 , —NR 24 C(═O)R 20 , —NR 24 C(═O)OR 21 , —NR 24 C(═O)NR 22 R 23 , —NR 24 S(═O) 2 R 21 , —NR 24 S(═O) 2 NR 22 R 23 , —OR 20 , —OCN, —OC(═O)R 20 , —OC(═O)NR 22 R 23 , —OC(═O)OR 20 , —OS(═O)R 20 , —OS(═O) 2 R 20 , —OS(═O) 2 OR 20 , —OS(═O) 2 NR 22 R 23 , —OP(═O)R 28 R 28 , —OP(═O)(OR 20 )(OR 20 ), —Si(R 24 ) 3 , —SCN, —S(═O) n R 20 , —S(═O) 2 OR 20 , —SO 3 R 27 , —S(═O) 2 NR 22 R 23 , —S(═O)NR 22 R 23 , —P(═O)R 28 R 28 , —P(═O)(NR 22 R 23 )(NR 22 R 23 ), and —P(═O)(OR 20 )(OR 20 ); alternatively, R 3 and R 6 can, together with the atoms linking them, form a C 6-10 aryl optionally substituted by 1-3 R 19 , C 3-10 cycloalkyl optionally substituted by 1-3 R 19 , 3-10 membered heterocycloalkyl optionally substituted by 1-3 R 19 or a 5-10 membered heteroaryl optionally substituted by 1-3 R 19 ; alternatively R 3 and R 5 or R 4 and R 6 can together form a double bond; alternatively any of R 3 and R 4 , and R 5 and R 6 can together form ═O; and alternatively any of R 1 and R 2 , R 1 and R 3 , R 1 and R 5 , R 1 and R 11 , R 4 and R 11 , and R 6 and R 11 can, together with the atoms linking them, form a 5-15 membered heterocycloalkyl optionally substituted by 1-3 R 19 or a 5-15 membered heteroaryl optionally substituted by 1-3 R 19 .

›Embodiment 25

The compound of any of Embodiments 1-19, wherein R 1 , R 2 , and R 11 are independently chosen from H, C 1-6 alkyl optionally substituted by 1-3 R 19 , C 2-6 alkenyl optionally substituted by 1-3 R 19 , C 2-6 alkynyl optionally substituted by 1-3 R 19 , C 6-11 aryl optionally substituted by 1-3 R 19 , C 3-11 cycloalkyl optionally substituted by 1-3 R 19 , 3-15 membered heterocycloalkyl optionally substituted by 1-3 R 19 , 5-15 membered heteroaryl optionally substituted by 1-3 R 19 , and —OR 20 ; R 3 , R 4 , R 5 , and R 6 are independently chosen from H, C 1-6 alkyl optionally substituted by 1-3 R 19 , C 2-6 alkenyl optionally substituted by 1-3 R 19 , C 2-6 alkynyl optionally substituted by 1-3 R 19 , C 6-11 aryl optionally substituted by 1-3 R 19 , C 3-11 cycloalkyl optionally substituted by 1-3 R 19 , 3-15 membered heterocycloalkyl optionally substituted by 1-3 R 19 , 5-15 membered heteroaryl optionally substituted by 1-3 R 19 , halogen, —CN, —C(═O)R 20 , —C(═O)OR 20 , —C(═O)NR 22 R 23 , —NC, —NO 2 , —NR 22 R 23 , —NR 24 OR 26 , —NR 24 C(═O)R 20 , —NR 24 C(═O)OR 21 , —NR 24 C(═O)NR 22 R 23 , —NR 24 S(═O) 2 R 21 , —NR 24 S(═O) 2 NR 22 R 23 , —OR 20 , —OCN, —OC(═O)R 20 , —OC(═O)NR 22 R 23 , —OC(═O)OR 20 , —OS(═O)R 20 , —OS(═O) 2 R 20 , —OS(═O) 2 OR 20 , —OS(═O) 2 NR 22 R 23 , —OP(═O)R 28 R 28 , —OP(═O)(OR 20 )(OR 20 ), —Si(R 24 ) 3 , —SCN, —S(═O) n R 20 , —S(═O) 2 OR 20 , —SO 3 R 27 , —S(═O) 2 NR 22 R 23 , —S(═O)NR 22 R 23 , —P(═O)R 28 R 28 , —P(═O)(NR 22 R 23 )(NR 22 R 23 ), and —P(═O)(OR 20 )(OR 20 ); alternatively, R 3 and R 6 can, together with the atoms linking them, form a C 6-10 aryl optionally substituted by 1-3 R 19 , C 3-10 cycloalkyl optionally substituted by 1-3 R 19 , 3-10 membered heterocycloalkyl optionally substituted by 1-3 R 19 or a 5-10 membered heteroaryl optionally substituted by 1-3 R 19 ; alternatively R 3 and R 5 or R 4 and R 6 can together form a double bond; alternatively any of R 3 and R 4 , and R 5 and R 6 can together form ═O; and alternatively any of R 1 and R 2 , R 1 and R 3 , R 1 and R 5 , R 1 and R 11 , R 4 and R 11 , and R 6 and R 11 can, together with the atoms linking them, form a 5-15 membered heterocycloalkyl optionally substituted by 1-3 R 19 or a 5-15 membered heteroaryl optionally substituted by 1-3 R 19 .

›Embodiment 26

The compound of any of Embodiments 1-19, wherein R 1 , R 2 , and R 11 are independently chosen from H, C 1-6 alkyl optionally substituted by 1-3 R 19 , C 2-6 alkenyl optionally substituted by 1-3 R 19 , C 2-6 alkynyl optionally substituted by 1-3 R 19 , C 6-11 aryl optionally substituted by 1-3 R 19 , C 3-11 cycloalkyl optionally substituted by 1-3 R 19 , 3-15 membered heterocycloalkyl optionally substituted by 1-3 R 19 , 5-15 membered heteroaryl optionally substituted by 1-3 R 19 , and —OR 20 ; R 3 , R 4 , R 5 , and R 6 are independently chosen from H, C 1-6 alkyl optionally substituted by 1-3 R 19 , C 2-6 alkenyl optionally substituted by 1-3 R 19 , C 2-6 alkynyl optionally substituted by 1-3 R 19 , C 6-11 aryl optionally substituted by 1-3 R 19 , C 3-11 cycloalkyl optionally substituted by 1-3 R 19 , 3-15 membered heterocycloalkyl optionally substituted by 1-3 R 19 , 5-15 membered heteroaryl optionally substituted by 1-3 R 19 , halogen, —CN, —C(═O)R 20 , —C(═O)OR 20 , —C(═O)NR 22 R 23 , —NO 2 , —NR 22 R 23 , —NR 24 C(═O)R 20 , —NR 24 S(═O) 2 R 21 , —OR 20 , —OC(═O)R 20 , —S(═O) n R 20 , and —S(═O) 2 NR 22 R 23 ; alternatively, R 3 and R 6 can, together with the atoms linking them, form a C 6-10 aryl optionally substituted by 1-3 R 19 , C 3-10 cycloalkyl optionally substituted by 1-3 R 19 , 3-10 membered heterocycloalkyl optionally substituted by 1-3 R 19 or a 5-10 membered heteroaryl optionally substituted by 1-3 R 19 ; alternatively R 3 and R 5 or R 4 and R 6 can together form a double bond; alternatively any of R 3 and R 4 , and R 5 and R 6 can together form ═O; and alternatively any of R 1 and R 2 , R 1 and R 3 , R 1 and R 5 , R 1 and R 11 , R 4 and R 11 , and R 6 and R 11 can, together with the atoms linking them, form a 5-15 membered heterocycloalkyl optionally substituted by 1-3 R 19 or a 5-15 membered heteroaryl optionally substituted by 1-3 R 19 .

›Embodiment 27

The compound of any of Embodiments 1-19, wherein R 1 , R 2 , and R 11 are independently chosen from H, C 1-6 alkyl optionally substituted by 1-3 R 19 , C 6-11 aryl optionally substituted by 1-3 R 19 , C 3-11 cycloalkyl optionally substituted by 1-3 R 19 , 3-15 membered heterocycloalkyl optionally substituted by 1-3 R 19 , and 5-15 membered heteroaryl optionally substituted by 1-3 R 19 ; R 3 , R 4 , R 5 , and R 6 are independently chosen from H, C 1-6 alkyl optionally substituted by 1-3 R 19 , C 6-11 aryl optionally substituted by 1-3 R 19 , C 3-11 cycloalkyl optionally substituted by 1-3 R 19 , 3-15 membered heterocycloalkyl optionally substituted by 1-3 R 19 , 5-15 membered heteroaryl optionally substituted by 1-3 R 19 , halogen, —CN, —C(═O)R 20 , —C(═O)OR 20 , —C(═O)NR 22 R 23 , —NO 2 , —NR 22 R 23 , —NR 24 C(═O)R 20 , —NR 24 S(═O) 2 R 21 , —OR 20 , —OC(═O)R 20 , —S(═O) n R 20 , and —S(═O) 2 NR 22 R 23 ; alternatively, R 3 and R 6 can, together with the atoms linking them, form a C 6-10 aryl optionally substituted by 1-3 R 19 , C 3-10 cycloalkyl optionally substituted by 1-3 R 19 , 3-10 membered heterocycloalkyl optionally substituted by 1-3 R 19 or a 5-10 membered heteroaryl optionally substituted by 1-3 R 19 ; alternatively R 3 and R 5 or R 4 and R 6 can together form a double bond; and alternatively any of R 1 and R 2 , R 1 and R 3 , R 1 and R 5 , R 1 and R 11 , R 4 and R 11 , and R 6 and R 11 can, together with the atoms linking them, form a 5-15 membered heterocycloalkyl optionally substituted by 1-3 R 19 or a 5-15 membered heteroaryl optionally substituted by 1-3 R 19 .

›Embodiment 28

The compound of any of Embodiments 1-19, wherein R 1 , R 2 , and R 11 are independently chosen from H and C 1-6 alkyl optionally substituted by 1-3 R 19 ; R 3 , R 4 , R 5 and R 6 are independently chosen from H, C 1-6 alkyl optionally substituted by 1-3 R 19 , C 6-11 aryl optionally substituted by 1-3 R 19 , C 3-11 cycloalkyl optionally substituted by 1-3 R 19 , 3-15 membered heterocycloalkyl optionally substituted by 1-3 R 19 , 5-15 membered heteroaryl optionally substituted by 1-3 R 19 , halogen, —CN, —C(═O)R 20 , —C(═O)OR 20 , —C(═O)NR 22 R 23 , —NO 2 , —NR 22 R 23 , —NR 24 C(═O)R 20 , —NR 24 S(═O) 2 R 21 , —OR 20 , —OC(═O)R 20 , —S(═O) n R 20 , and —S(═O) 2 NR 22 R 23 ; alternatively, R 3 and R 6 can, together with the atoms linking them, form a C 6-10 aryl optionally substituted by 1-3 R 19 , C 3-10 cycloalkyl optionally substituted by 1-3 R 19 , 3-10 membered heterocycloalkyl optionally substituted by 1-3 R 19 or a 5-10 membered heteroaryl optionally substituted by 1-3 R 19 ; alternatively R 3 and R 5 or R 4 and R 6 can together form a double bond; and alternatively any of R 1 and R 2 , R 1 and R 3 , R 1 and R 5 , R 1 and R 11 , R 4 and R 11 , and R 6 and R 11 can, together with the atoms linking them, form a 5-15 membered heterocycloalkyl optionally substituted by 1-3 R 19 or a 5-15 membered heteroaryl optionally substituted by 1-3 R 19 .

›Embodiment 29

The compound of any of Embodiments 1-19, wherein R 1 , R 2 , and R 11 are independently chosen from H and C 1-6 alkyl optionally substituted by 1-3 R 19 ; R 3 , R 4 , R 5 , and R 6 are independently chosen from H, C 1-6 alkyl optionally substituted by 1-3 R 19 , C 6-11 aryl optionally substituted by 1-3 R 19 , C 3-11 cycloalkyl optionally substituted by 1-3 R 19 , 3-15 membered heterocycloalkyl optionally substituted by 1-3 R 19 , 5-15 membered heteroaryl optionally substituted by 1-3 R 19 , halogen, —CN, —C(═O)R 20 , —C(═O)OR 20 , —C(═O)NR 22 R 23 , —NO 2 , —NR 22 R 23 , —NR 24 C(═O)R 20 , —NR 24 S(═O) 2 R 21 , —OR 20 , —OC(═O)R 20 , —S(═O) n R 20 , and —S(═O) 2 NR 22 R 23 ; alternatively, any of R 1 and R 2 , R 1 and R 3 , R 1 and R 5 , R 1 and R 11 , R 4 and R 11 , and R 6 and R 11 can, together with the atoms linking them, form a 5-15 membered heterocycloalkyl optionally substituted by 1-3 R 19 .

›Embodiment 30

The compound of any of Embodiments 1-19, wherein R 1 , R 2 , and R 11 are independently chosen from H and C 1-6 alkyl optionally substituted by 1-3 R 19 ; R 3 , R 4 , R 5 and R 6 are independently chosen from H, C 1-6 alkyl optionally substituted by 1-3 R 19 , C 6-10 aryl optionally substituted by 1-3 R 19 , C 3-7 cycloalkyl optionally substituted by 1-3 R 19 , 3-7 membered heterocycloalkyl optionally substituted by 1-3 R 19 , 5-6 membered heteroaryl optionally substituted by 1-3 R 19 , halogen, —CN, —C(═O)R 20 , —C(═O)OR 20 , —C(═O)NR 22 R 23 , —NO 2 , —NR 22 R 23 , —NR 24 C(═O)R 20 , —NR 24 S(═O) 2 R 21 , —OR 20 , —OC(═O)R 20 , —S(═O) n R 20 , and —S(═O) 2 NR 22 R 23 ; alternatively, any of R 1 and R 2 , R 1 and R 3 , R 1 and R 5 , R 1 and R 11 , R 4 and R 11 , and R 6 and R 11 can, together with the atoms linking them, form a 5-7 membered heterocycloalkyl optionally substituted by 1-3 R 19 .

›Embodiment 31

The compound of any of Embodiments 1-19, wherein R 1 , R 2 , and R 11 are independently chosen from H and C 1-6 alkyl optionally substituted by 1-3 R 19 ; R 3 , R 4 , R 5 , and R 6 are independently chosen from H, C 1-6 alkyl optionally substituted by 1-3 R 19 , halogen, —CN, —C(═O)R 20 , —C(═O)OR 20 , —C(═O)NR 22 R 23 , —NO 2 , —NR 22 R 23 , —NR 24 C(═O)R 20 , —NR 24 S(═O) 2 R 21 , —OR 20 , —OC(═O)R 20 , —S(═O) n R 20 , and —S(═O) 2 NR 22 R 23 ; alternatively, R 3 and R 6 can, together with the atoms linking them, form a C 6-10 aryl optionally substituted by 1-3 R 19 , C 3-10 cycloalkyl optionally substituted by 1-3 R 19 , 3-10 membered heterocycloalkyl optionally substituted by 1-3 R 19 or a 5-10 membered heteroaryl optionally substituted by 1-3 R 19 ; alternatively R 3 and R 5 or R 4 and R 6 can together form a double bond; and alternatively any of R 1 and R 2 , R 1 and R 3 , R 1 and R 5 , R 1 and R 11 , R 4 and R 11 , and R 6 and R 11 can, together with the atoms linking them, form a 5-15 membered heterocycloalkyl optionally substituted by 1-3 R 19 or a 5-15 membered heteroaryl optionally substituted by 1-3 R 19 .

›Embodiment 32

The compound of any of Embodiments 1-19, wherein R 1 , R 2 , and R 11 are independently chosen from H and C 1-6 alkyl optionally substituted by 1-3 R 19 ; R 3 , R 4 , R 5 and R 6 are independently chosen from H, C 1-6 alkyl optionally substituted by 1-3 R 19 , halogen, —CN, —C(═O)R 20 , —C(═O)OR 20 , —C(═O)NR 22 R 23 , —NO 2 , —NR 22 R 23 , —NR 24 C(═O)R 20 , —NR 24 S(═O) 2 R 21 , —OR 20 , —OC(═O)R 20 , —S(═O) n R 20 , and —S(═O) 2 NR 22 R 23 ; alternatively, any of R 1 and R 2 , R 1 and R 3 , R 1 and R 5 , R 1 and R 11 , R 4 and R 11 , and R 6 and R 11 can, together with the atoms linking them, form a 5-15 membered heterocycloalkyl optionally substituted by 1-3 R 19 .

›Embodiment 33

The compound of any of Embodiments 1-19, wherein R 1 , R 2 , and R 11 are independently chosen from H and C 1-6 alkyl optionally substituted by 1-3 R 19 ; R 3 , R 4 , R 5 , and R 6 are independently chosen from H, C 1-6 alkyl optionally substituted by 1-3 R 19 , halogen, —CN, —C(═O)R 20 , —C(═O)OR 20 , —C(═O)NR 22 R 23 , —NO 2 , —NR 22 R 23 , —NR 24 C(═O)R 20 , —NR 24 S(═O) 2 R 21 , —OR 20 , —OC(═O)R 20 , —S(═O) n R 20 , and —S(═O) 2 NR 22 R 23 ; alternatively, any of R 1 and R 2 , R 1 and R 3 , R 1 and R 5 , R 1 and R 11 , R 4 and R 11 , and R 6 and R 11 can, together with the atoms linking them, form a 5-7 membered heterocycloalkyl optionally substituted by 1-3 R 19 .

›Embodiment 34

The compound of any of Embodiments 1-19, wherein R 1 , R 2 , and R 11 are independently chosen from H and C 1-6 alkyl optionally substituted by 1-3 R 19 ; R 3 , R 4 , R 5 , and R 6 are independently chosen from H, C 1-6 alkyl optionally substituted by 1-3 R 19 , halogen, —CN, —C(═O)R 20 , —C(═O)OR 20 , —C(═O)NR 22 R 23 , —NO 2 , —NR 22 R 23 , —NR 24 C(═O)R 20 , —NR 24 S(═O) 2 R 21 , —OR 20 , —OC(═O)R 20 , —S(═O) n R 20 , and —S(═O) 2 NR 22 R 23 ; alternatively, any of R 1 and R 2 , R 1 and R 3 , R 1 and R 5 , R 1 and R 11 , R 4 and R 11 , and R 6 and R 11 can, together with the atoms linking them, form a 5-6 membered heterocycloalkyl optionally substituted by 1-3 R 19 .

›Embodiment 35

The compound of any of Embodiments 1-19, wherein R 1 , R 2 , and R 11 are independently chosen from H and C 1-6 alkyl optionally substituted by 1-3 R 19 ; R 3 , R 4 , R 5 , and R 6 are independently chosen from H, C 1-6 alkyl optionally substituted by 1-3 R 19 , halogen, —CN, —C(═O)R 20 , —C(═O)OR 20 , —C(═O)NR 22 R 23 , —NO 2 , —NR 22 R 23 , —NR 24 C(═O)R 20 , —NR 24 S(═O) 2 R 21 , —OR 20 , —OC(═O)R 20 , —S(═O) n R 20 , and —S(═O) 2 NR 22 R 23 ; alternatively any of R 1 and R 2 , R 1 and R 3 , R 1 and R 5 , R 1 and R 11 , R 4 and R 11 , and R 6 and R 11 can, together with the atoms linking them, form a 3-15 membered heterocycloalkyl optionally substituted by 1-3 R 19 or a 5-15 membered heteroaryl optionally substituted by 1-3 R 19 .

›Embodiment 36

The compound of any of Embodiments 1-19, wherein R 1 , R 2 , and R 11 are independently chosen from H and C 1-6 alkyl optionally substituted by 1-3 R 19 ; R 3 , R 4 , R 5 , and R 6 are independently chosen from H, C 1-6 alkyl optionally substituted by 1-3 R 19 , halogen, —CN, —C(═O)R 20 , —C(═O)OR 20 , —C(═O)NR 22 R 23 , —NO 2 , —NR 22 R 23 , —NR 24 C(═O)R 20 , —NR 24 S(═O) 2 R 21 , —OR 20 , —OC(═O)R 20 , —S(═O) n R 20 , and —S(═O) 2 NR 22 R 23 ; alternatively any of R 1 and R 2 , R 1 and R 3 , R 1 and R 5 , R 1 and R 11 , R 4 and R 11 , and R 6 and R 11 can, together with the atoms linking them, form a 5-15 membered heterocycloalkyl optionally substituted by 1-3 R 19 or a 5-15 membered heteroaryl optionally substituted by 1-3 R 19 .

›Embodiment 37

The compound of any of Embodiments 1-19, wherein R 1 , R 2 , and R 11 are independently chosen from H and C 1-6 alkyl optionally substituted by 1-3 R 19 ; R 3 , R 4 , R 5 , and R 6 are independently chosen from H, C 1-6 alkyl optionally substituted by 1-3 R 19 , halogen, —CN, —C(═O)R 20 , —C(═O)OR 20 , —C(═O)NR 22 R 23 , —NO 2 , —NR 22 R 23 , —NR 24 C(═O)R 20 , —NR 24 S(═O) 2 R 21 , —OR 20 , —OC(═O)R 20 , —S(═O) n R 20 , and —S(═O) 2 NR 22 R 23 ; alternatively any of R 1 and R 2 , R 1 and R 3 , R 1 and R 5 , R 1 and R 11 , R 4 and R 11 , and R 6 and R 11 can, together with the atoms linking them, form a 5-15 membered heterocycloalkyl optionally substituted by 1-3 R 19 .

›Embodiment 38

The compound of any of Embodiments 1-19, wherein R 1 , R 2 , and R 11 are independently chosen from H and C 1-6 alkyl optionally substituted by 1-3 R 19 ; R 3 , R 4 , R 5 , and R 6 are independently chosen from H, C 1-6 alkyl optionally substituted by 1-3 R 19 , halogen, —CN, —C(═O)R 20 , —C(═O)NR 22 R 23 , —NR 22 R 23 , —NR 24 C(═O)R 20 , —NR 24 S(═O) 2 R 21 , —OR 20 , —S(═O) n R 20 , and —S(═O) 2 NR 22 R 23 ; alternatively any of R 1 and R 2 , R 1 and R 3 , R 1 and R 5 , R 1 and R 11 , R 4 and R 11 , and R 6 and R 11 can, together with the atoms linking them, form a 5-15 membered heterocycloalkyl optionally substituted by 1-3 R 19 .

›Embodiment 39

The compound of any of Embodiments 1-19, wherein R 1 , R 2 , and R 11 are independently chosen from H and C 1-6 alkyl optionally substituted by 1-13 R 19 , C 2-6 alkenyl optionally substituted by 1-11 R 19 , C 2-6 alkynyl optionally substituted by 1-9 R 19 , C 6-11 aryl optionally substituted by 1-11 R 19 , C 7-16 arylalkyl optionally substituted by 1-19 R 19 , C 3-11 cycloalkyl optionally substituted by 1-21 R 19 , C 4-17 cycloalkylalkyl optionally substituted by 1-32 R 19 , 3-15 membered heterocycloalkyl optionally substituted by 1-28 R 19 , 4-21 membered heterocycloalkylalkyl optionally substituted by 1-40 R 19 , 5-15 membered heteroaryl optionally substituted by 1-15 R 19 , 6-21 membered heteroarylalkyl optionally substituted by 1-27 R 19 , and —OR 20 ; R 3 , R 4 , R 5 , and R 6 are independently chosen from H, C 1-6 alkyl optionally substituted by 1-13 R 19 , C 2-6 alkenyl optionally substituted by 1-11 R 19 , C 2-6 alkynyl optionally substituted by 1-9 R 19 , C 6-11 aryl optionally substituted by 1-11 R 19 , C 7-16 arylalkyl optionally substituted by 1-19 R 19 , C 3-11 cycloalkyl optionally substituted by 1-21 R 19 , C 4-17 cycloalkylalkyl optionally substituted by 1-32 R 19 , 3-15 membered heterocycloalkyl optionally substituted by 1-28 R 19 , 4-21 membered heterocycloalkylalkyl optionally substituted by 1-40 R 19 , 5-15 membered heteroaryl optionally substituted by 1-15 R 19 , 6-21 membered heteroarylalkyl optionally substituted by 1-27 R 19 , halogen, —CN, —C(═O)R 20 , —C(═O)OR 20 , —C(═O)NR 22 R 23 , —NO 2 , —NR 22 R 23 , and —OR 20 ; alternatively, R 3 and R 6 can, together with the atoms linking them, form a C 6-11 aryl optionally substituted by 1-11 R 19 , C 3-11 cycloalkyl optionally substituted by 1-21 R 19 , 3-15 membered heterocycloalkyl optionally substituted by 1-28 R 19 or a 5-15 membered heteroaryl optionally substituted by 1-15 R 19 ; alternatively R 3 and R 5 or R 4 and R 6 can together form a double bond; alternatively any of R 3 and R 4 , and R 5 and R 6 can together form ═O, ═NR 20 , ═NOR 20 , or ═S; and alternatively any of R 1 and R 2 , R 1 and R 3 , R 1 and R 5 , R 1 and R 11 , R 4 and R 11 , and R 6 and R 11 can, together with the atoms linking them, form a 3-15 membered heterocycloalkyl optionally substituted by 1-28 R 19 or a 5-15 membered heteroaryl optionally substituted by 1-15 R 19 .

›Embodiment 40

The compound of any of Embodiments 1-19, wherein R 1 , R 2 , and R 11 are independently chosen from H and C 1-6 alkyl optionally substituted by 1-13 R 19 , C 2-6 alkenyl optionally substituted by 1-11 R 19 , C 2-6 alkynyl optionally substituted by 1-9 R 19 , C 6-11 aryl optionally substituted by 1-11 R 19 , C 7-16 arylalkyl optionally substituted by 1-19 R 19 , C 3-11 cycloalkyl optionally substituted by 1-21 R 19 , C 4-17 cycloalkylalkyl optionally substituted by 1-32 R 19 , 3-15 membered heterocycloalkyl optionally substituted by 1-28 R 19 , 4-21 membered heterocycloalkylalkyl optionally substituted by 1-40 R 19 , 5-15 membered heteroaryl optionally substituted by 1-15 R 19 , 6-21 membered heteroarylalkyl optionally substituted by 1-27 R 19 , and —OR 20 ; R 3 , R 4 , R 5 , and R 6 are independently chosen from H, C 1-6 alkyl optionally substituted by 1-13 R 19 , C 2-6 alkenyl optionally substituted by 1-11 R 19 , C 2-6 alkynyl optionally substituted by 1-9 R 19 , C 6-11 aryl optionally substituted by 1-11 R 19 , C 7-16 arylalkyl optionally substituted by 1-19 R 19 , C 3-11 cycloalkyl optionally substituted by 1-21 R 19 , C 4-17 cycloalkylalkyl optionally substituted by 1-32 R 19 , 3-15 membered heterocycloalkyl optionally substituted by 1-28 R 19 , 4-21 membered heterocycloalkylalkyl optionally substituted by 1-40 R 19 , 5-15 membered heteroaryl optionally substituted by 1-15 R 19 , 6-21 membered heteroarylalkyl optionally substituted by 1-27 R 19 , halogen, —CN, —C(═O)NR 22 R 23 , —NO 2 , —NR 22 R 23 , and —OR 20 ; alternatively, R 3 and R 6 can, together with the atoms linking them, form a C 6-11 aryl optionally substituted by 1-11 R 19 , C 3-11 cycloalkyl optionally substituted by 1-21 R 19 , 3-15 membered heterocycloalkyl optionally substituted by 1-28 R 19 or a 5-15 membered heteroaryl optionally substituted by 1-15 R 19 ; alternatively R 3 and R 5 or R 4 and R 6 can together form a double bond; alternatively any of R 3 and R 4 , and R 5 and R 6 can together form ═O, ═NR 20 , ═NOR 20 , or ═S; and alternatively any of R 1 and R 2 , R 1 and R 3 , R 1 and R 5 , R 1 and R 11 , R 4 and R 11 , and R 6 and R 11 can, together with the atoms linking them, form a 3-15 membered heterocycloalkyl optionally substituted by 1-28 R 19 or a 5-15 membered heteroaryl optionally substituted by 1-15 R 19 .

›Embodiment 41

The compound of any of Embodiments 1-19, wherein R 1 , R 4 , R 5 , R 6 , and R 11 are independently chosen from H and C 1-6 alkyl optionally substituted by 1-13 R 19 ; R 2 is chosen from H, C 1-6 alkyl optionally substituted by 1-13 R 19 , C 7-16 arylalkyl optionally substituted by 1-19 R 19 , and 6-21 membered heteroarylalkyl optionally substituted by 1-27 R 19 ; R 3 is chosen from H, C 1-6 alkyl optionally substituted by 1-13 R 19 , C 7-16 arylalkyl optionally substituted by 1-19 R 19 , C 4-17 cycloalkylalkyl optionally substituted by 1-32 R 19 , and 6-21 membered heteroarylalkyl optionally substituted by 1-27 R 19 ; alternatively, R 3 and R 6 can, together with the atoms linking them, form a C 3-10 cycloalkyl optionally substituted by 1-6 R 19 ; alternatively R 3 and R 4 can together form ═O; and alternatively any of R 1 and R 2 , R 1 and R 3 , R 1 and R 5 , R 1 and R 11 , R 4 and R 11 , and R 6 and R 11 can, together with the atoms linking them, form a 3-15 membered heterocycloalkyl optionally substituted by 1-22 R 19 .

›Embodiment 42

The compound of any of Embodiments 1-19, wherein R 1 , R 4 , R 5 , R 6 , and R 11 are independently chosen from H and C 1-6 alkyl optionally substituted by 1-13 R 19 ; R 2 is chosen from H, C 1-6 alkyl optionally substituted by 1-13 R 19 , C 7-16 arylalkyl optionally substituted by 1-19 R 19 , and 6-21 membered heteroarylalkyl optionally substituted by 1-27 R 19 ; R 3 is chosen from H, C 1-6 alkyl optionally substituted by 1-13 R 19 , C 7-16 arylalkyl optionally substituted by 1-19 R 19 , C 4-17 cycloalkylalkyl optionally substituted by 1-32 R 19 , and 6-21 membered heteroarylalkyl optionally substituted by 1-27 R 19 ; alternatively, R 3 and R 6 can, together with the atoms linking them, form a C 3-10 cycloalkyl optionally substituted by 1-6 R 19 ; alternatively R 3 and R 4 can together form ═O; and alternatively any of R 1 and R 2 , R 1 and R 3 , R 1 and R 5 , R 4 and R 11 , and R 6 and R 11 can, together with the atoms linking them, form a 3-15 membered heterocycloalkyl optionally substituted by 1-22 R 19 .

›Embodiment 43

The compound of any of Embodiments 1-19, wherein R 1 , R 4 , R 5 , R 6 , and R 11 are independently chosen from H and C 1-6 alkyl optionally substituted by 1-13 R 19 ; R 2 is chosen from H, C 1-6 alkyl optionally substituted by 1-13 R 19 , C 7-16 arylalkyl optionally substituted by 1-19 R 19 , and 6-21 membered heteroarylalkyl optionally substituted by 1-27 R 19 ; R 3 is chosen from H, C 1-6 alkyl optionally substituted by 1-13 R 19 , C 7-16 arylalkyl optionally substituted by 1-19 R 19 , C 4-17 cycloalkylalkyl optionally substituted by 1-32 R 19 , and 6-21 membered heteroarylalkyl optionally substituted by 1-27 R 19 ; alternatively, R 3 and R 6 can, together with the atoms linking them, form a C 3-6 cycloalkyl optionally substituted by 1-6 R 19 ; and alternatively any of R 1 and R 2 , R 1 and R 3 , R 1 and R 5 , R 1 and R 11 , R 4 and R 11 , and R 6 and R 11 can, together with the atoms linking them, form a 3-15 membered heterocycloalkyl optionally substituted by 1-22 R 19 .

›Embodiment 44

The compound of any of Embodiments 1-19, wherein R 1 , R 4 , R 5 , R 6 , and R 11 are independently chosen from H and C 1-6 alkyl optionally substituted by 1-13 R 19 ; R 2 is chosen from H, C 1-6 alkyl optionally substituted by 1-13 R 19 , C 7-16 arylalkyl optionally substituted by 1-19 R 19 , and 6-21 membered heteroarylalkyl optionally substituted by 1-27 R 19 ; R 3 is chosen from H, C 1-6 alkyl optionally substituted by 1-13 R 19 , C 7-16 arylalkyl optionally substituted by 1-19 R 19 , C 4-17 cycloalkylalkyl optionally substituted by 1-32 R 19 , and 6-21 membered heteroarylalkyl optionally substituted by 1-27 R 19 ; alternatively, R 3 and R 6 can, together with the atoms linking them, form a C 3-6 cycloalkyl optionally substituted by 1-6 R 19 ; and alternatively any of R 1 and R 2 , R 1 and R 3 , R 1 and R 5 , R 4 and R 11 , and R 6 and R 11 can, together with the atoms linking them, form a 3-15 membered heterocycloalkyl optionally substituted by 1-22 R 19 .

›Embodiment 45

The compound of any of Embodiments 1-19, wherein R 1 , R 4 , R 5 , R 6 , and R 11 are independently chosen from H and C 1-6 alkyl optionally substituted by 1-13 R 19 ; R 2 is chosen from H, C 1-6 alkyl optionally substituted by 1-13 R 19 , C 7-16 arylalkyl optionally substituted by 1-19 R 19 , and 6-21 membered heteroarylalkyl optionally substituted by 1-27 R 19 ; R 3 is chosen from H, C 1-6 alkyl optionally substituted by 1-13 R 19 , C 7-16 arylalkyl optionally substituted by 1-19 R 19 , C 4-17 cycloalkylalkyl optionally substituted by 1-32 R 19 , and 6-21 membered heteroarylalkyl optionally substituted by 1-27 R 19 ; alternatively, R 3 and R 6 can, together with the atoms linking them, form a C 3-6 cycloalkyl optionally substituted by 1-6 R 19 .

›Embodiment 46

The compound of any of Embodiments 1-19, wherein R 1 and R 11 are independently chosen from H and C 1-6 alkyl optionally substituted by 1-13 R 19 ; R 4 , R 5 , and R 6 are H; R 2 is chosen from H, C 1-6 alkyl optionally substituted by 1-13 R 19 , C 7-16 arylalkyl optionally substituted by 1-19 R 19 , and 6-21 membered heteroarylalkyl optionally substituted by 1-27 R 19 ; R 3 is chosen from H, C 1-6 alkyl optionally substituted by 1-13 R 19 , C 7-16 arylalkyl optionally substituted by 1-19 R 19 , C 4-17 cycloalkylalkyl optionally substituted by 1-32 R 19 , and 6-21 membered heteroarylalkyl optionally substituted by 1-27 R 19 ; alternatively R 3 and R 6 can, together with the atoms linking them, form a C 3-6 cycloalkyl optionally substituted by 1-6 R 19 ; alternatively R 3 and R 4 can together form ═O; and alternatively any of R 1 and R 2 , R 1 and R 3 , R 1 and R 5 , R 1 and R 11 , R 4 and R 11 , and R 6 and R 11 can, together with the atoms linking them, form a 3-15 membered heterocycloalkyl optionally substituted by 1-22 R 19 .

›Embodiment 47

The compound of any of Embodiments 1-19, wherein R 1 and R 11 are independently chosen from H and C 1-6 alkyl optionally substituted by 1-13 R 19 ; R 4 , R 5 , and R 6 are H; R 2 is chosen from H, C 1-6 alkyl optionally substituted by 1-13 R 19 , C 7-16 arylalkyl optionally substituted by 1-19 R 19 , and 6-21 membered heteroarylalkyl optionally substituted by 1-27 R 19 ; R 3 is chosen from H, C 1-6 alkyl optionally substituted by 1-13 R 19 , C 7-16 arylalkyl optionally substituted by 1-19 R 19 , C 4-17 cycloalkylalkyl optionally substituted by 1-32 R 19 , and 6-21 membered heteroarylalkyl optionally substituted by 1-27 R 19 ; alternatively R 3 and R 6 can, together with the atoms linking them, form a C 3-6 cycloalkyl optionally substituted by 1-6 R 19 ; alternatively R 3 and R 4 can together form ═O; and alternatively any of R 1 and R 2 , R 1 and R 3 , R 1 and R 5 , R 4 and R 11 , and R 6 and R 11 can, together with the atoms linking them, form a 3-15 membered heterocycloalkyl optionally substituted by 1-22 R 19 .

›Embodiment 48

The compound of any of Embodiments 1-19, wherein R 1 , R 2 , and R 11 are independently chosen from H and C 1-6 alkyl optionally substituted by 1-13 R 19 ; R 4 , R 5 , and R 6 are H; R 3 is chosen from H, C 1-6 alkyl optionally substituted by 1-13 R 19 , C 7-16 arylalkyl optionally substituted by 1-19 R 19 , C 4-17 cycloalkylalkyl optionally substituted by 1-32 R 19 , and 6-21 membered heteroarylalkyl optionally substituted by 1-27 R 19 ; alternatively R 3 and R 6 can, together with the atoms linking them, form a C 3-6 cycloalkyl optionally substituted by 1-3 R 19 ; and alternatively any of R 1 and R 2 , R 1 and R 3 , R 1 and R 5 , R 1 and R 11 , R 4 and R 11 , and R 6 and R 11 can, together with the atoms linking them, form a 3-15 membered heterocycloalkyl optionally substituted by 1-22 R 19 .

›Embodiment 49

The compound of any of Embodiments 1-19, wherein R 1 , R 2 , and R 11 are independently chosen from H and C 1-6 alkyl optionally substituted by 1-13 R 19 ; R 4 , R 5 , and R 6 are H; R 3 is chosen from H, C 1-6 alkyl optionally substituted by 1-13 R 19 , C 7-16 arylalkyl optionally substituted by 1-19 R 19 , C 4-17 cycloalkylalkyl optionally substituted by 1-32 R 19 , and 6-21 membered heteroarylalkyl optionally substituted by 1-27 R 19 ; alternatively R 3 and R 6 can, together with the atoms linking them, form a C 3-6 cycloalkyl optionally substituted by 1-3 R 19 ; and alternatively any of R 1 and R 2 , R 1 and R 3 , R 1 and R 5 , R 4 and R 11 , and R 6 and R 11 can, together with the atoms linking them, form a 3-15 membered heterocycloalkyl optionally substituted by 1-22 R 19 .

›Embodiment 50

The compound of any of Embodiments 1-19, wherein R 1 , R 2 , and R 11 are independently chosen from H and C 1-6 alkyl optionally substituted by 1-13 R 19 ; R 4 , R 5 , and R 6 are H; R 3 is chosen from H, C 1-6 alkyl optionally substituted by 1-13 R 19 , C 7-16 arylalkyl optionally substituted by 1-19 R 19 , C 4-17 cycloalkylalkyl optionally substituted by 1-32 R 19 , and 6-21 membered heteroarylalkyl optionally substituted by 1-27 R 19 ; alternatively R 3 and R 6 can, together with the atoms linking them, form a C 3-6 cycloalkyl optionally substituted by 1-3 R 19 .

›Embodiment 51

The compound of any of Embodiments 1-19, wherein R 1 and R 11 are independently chosen from H and C 1-6 alkyl optionally substituted by 1-13 R 19 ; R 2 is chosen from H, C 1-6 alkyl optionally substituted by 1-13 R 19 , C 7-16 arylalkyl optionally substituted by 1-19 R 19 , and 6-21 membered heteroarylalkyl optionally substituted by 1-27 R 19 ; R 3 is chosen from H, C 1-6 alkyl optionally substituted by 1-13 R 19 , C 7-16 arylalkyl optionally substituted by 1-19 R 19 , C 6-10 cycloalkylalkyl optionally substituted by 1-10 R 19 , and 6-21 membered heteroarylalkyl optionally substituted by 1-27 R 19 ; R 4 , R 5 , and R 6 are H; alternatively R 3 and R 6 can, together with the atoms linking them, form a C 3-6 cycloalkyl optionally substituted by 1-3 R 19 ; alternatively R 3 and R 4 can together form ═O; and alternatively any of R 1 and R 2 , R 1 and R 3 , R 1 and R 5 , R 1 and R 11 , and R 4 and R 11 can, together with the atoms linking them, form a 3-15 membered heterocycloalkyl optionally substituted by 1-22 R 19 .

›Embodiment 52

The compound of any of Embodiments 1-19, wherein R 1 and R 11 are independently chosen from H and C 1-6 alkyl optionally substituted by 1-13 R 19 ; R 2 is chosen from H, C 1-6 alkyl optionally substituted by 1-13 R 19 , C 7-16 arylalkyl optionally substituted by 1-19 R 19 , and 6-21 membered heteroarylalkyl optionally substituted by 1-27 R 19 ; R 3 is chosen from H, C 1-6 alkyl optionally substituted by 1-13 R 19 , C 7-16 arylalkyl optionally substituted by 1-19 R 19 , C 6-10 cycloalkylalkyl optionally substituted by 1-10 R 19 , and 6-21 membered heteroarylalkyl optionally substituted by 1-27 R 19 ; R 4 , R 5 , and R 6 are H; alternatively R 3 and R 6 can, together with the atoms linking them, form a C 3-6 cycloalkyl optionally substituted by 1-3 R 19 ; alternatively R 3 and R 4 can together form ═O; and alternatively any of R 1 and R 2 , R 1 and R 3 , R 1 and R 5 , and R 4 and R 11 can, together with the atoms linking them, form a 3-15 membered heterocycloalkyl optionally substituted by 1-22 R 19 .

›Embodiment 53

The compound of any of Embodiments 1-19, wherein R 1 , R 4 , R 5 , R 6 , and R 11 are independently chosen from H and C 1-6 alkyl optionally substituted by 1-13 R 19 ; R 2 is chosen from H, C 1-6 alkyl optionally substituted by 1-13 R 19 , C 7-12 arylalkyl optionally substituted by 1-6 R 19 , and 6-10 membered heteroarylalkyl optionally substituted by 1-6 R 19 ; R 3 is chosen from H, C 1-6 alkyl optionally substituted by 1-13 R 19 , C 7-16 arylalkyl optionally substituted by 1-19 R 19 , C 6-10 cycloalkylalkyl optionally substituted by 1-10 R 19 , and 6-21 membered heteroarylalkyl optionally substituted by 1-27 R 19 ; alternatively R 3 and R 6 can, together with the atoms linking them, form a C 3-6 cycloalkyl optionally substituted by 1-3 R 19 ; and alternatively any of R 1 and R 2 , R 1 and R 3 , R 1 and R 5 , R 1 and R 11 , and R 4 and R 11 can, together with the atoms linking them, form a 3-15 membered heterocycloalkyl optionally substituted by 1-22 R 19 .

›Embodiment 54

The compound of any of Embodiments 1-19, wherein R 1 , R 4 , R 5 , R 6 , and R 11 are independently chosen from H and C 1-6 alkyl optionally substituted by 1-13 R 19 ; R 2 is chosen from H, C 1-6 alkyl optionally substituted by 1-13 R 19 , C 7-12 arylalkyl optionally substituted by 1-6 R 19 , and 6-10 membered heteroarylalkyl optionally substituted by 1-6 R 19 ; R 3 is chosen from H, C 1-6 alkyl optionally substituted by 1-13 R 19 , C 7-16 arylalkyl optionally substituted by 1-19 R 19 , C 6-10 cycloalkylalkyl optionally substituted by 1-10 R 19 , and 6-21 membered heteroarylalkyl optionally substituted by 1-27 R 19 ; alternatively R 3 and R 6 can, together with the atoms linking them, form a C 3-6 cycloalkyl optionally substituted by 1-3 R 19 ; and alternatively any of R 1 and R 2 , R 1 and R 3 , R 1 and R 5 , and R 4 and R 11 can, together with the atoms linking them, form a 3-15 membered heterocycloalkyl optionally substituted by 1-22 R 19 .

›Embodiment 55

The compound of any of Embodiments 1-19, wherein R 1 , R 4 , R 5 , R 6 , and R 11 are independently chosen from H and C 1-6 alkyl optionally substituted by 1-13 R 19 ; R 2 is chosen from H, C 1-6 alkyl optionally substituted by 1-13 R 19 , C 7-12 arylalkyl optionally substituted by 1-6 R 19 , and 6-10 membered heteroarylalkyl optionally substituted by 1-6 R 19 ; R 3 is chosen from H, C 1-6 alkyl optionally substituted by 1-13 R 19 , C 7-16 arylalkyl optionally substituted by 1-19 R 19 , C 6-10 cycloalkylalkyl optionally substituted by 1-10 R 19 , and 6-21 membered heteroarylalkyl optionally substituted by 1-27 R 19 ; alternatively R 3 and R 6 can, together with the atoms linking them, form a C 3-6 cycloalkyl optionally substituted by 1-3 R 19 .

›Embodiment 56

The compound of any of Embodiments 1-19, wherein R 1 and R 11 are independently chosen from H and C 1-6 alkyl optionally substituted by 1-13 R 19 ; R 2 is chosen from H, C 1-6 alkyl optionally substituted by 1-13 R 19 , C 7-12 arylalkyl optionally substituted by 1-6 R 19 , and 6-10 membered heteroarylalkyl optionally substituted by 1-6 R 19 ; R 3 is chosen from H, C 1-6 alkyl optionally substituted by 1-13 R 19 , C 7-16 arylalkyl optionally substituted by 1-19 R 19 , C 6-10 cycloalkylalkyl optionally substituted by 1-10 R 19 , and 6-21 membered heteroarylalkyl optionally substituted by 1-27 R 19 ; R 4 , R 5 , and R 6 are H; alternatively R 3 and R 6 can, together with the atoms linking them, form a C 3-6 cycloalkyl optionally substituted by 1-3 R 19 ; alternatively R 3 and R 4 can together form ═O; and alternatively any of R 1 and R 2 , R 1 and R 3 , R 1 and R 5 , R 1 and R 11 , and R 4 and R 11 can, together with the atoms linking them, form a 3-15 membered heterocycloalkyl optionally substituted by 1-22 R 19 .

›Embodiment 57

The compound of any of Embodiments 1-19, wherein R 1 and R 11 are independently chosen from H and C 1-6 alkyl optionally substituted by 1-13 R 19 ; R 2 is chosen from H, C 1-6 alkyl optionally substituted by 1-13 R 19 , C 7-12 arylalkyl optionally substituted by 1-6 R 19 , and 6-10 membered heteroarylalkyl optionally substituted by 1-6 R 19 ; R 3 is chosen from H, C 1-6 alkyl optionally substituted by 1-13 R 19 , C 7-16 arylalkyl optionally substituted by 1-19 R 19 , C 6-10 cycloalkylalkyl optionally substituted by 1-10 R 19 , and 6-21 membered heteroarylalkyl optionally substituted by 1-27 R 19 ; R 4 , R 5 , and R 6 are H; alternatively R 3 and R 6 can, together with the atoms linking them, form a C 3-6 cycloalkyl optionally substituted by 1-3 R 19 ; alternatively R 3 and R 4 can together form ═O; and alternatively any of R 1 and R 2 , R 1 and R 3 , R 1 and R 5 , and R 4 and R 11 can, together with the atoms linking them, form a 3-15 membered heterocycloalkyl optionally substituted by 1-22 R 19 .

›Embodiment 58

The compound of any of Embodiments 1-19, wherein R 1 , R 2 , and R 11 are independently chosen from H and C 1-6 alkyl optionally substituted by 1-13 R 19 ; R 3 is chosen from H, C 1-6 alkyl optionally substituted by 1-13 R 19 , C 7-16 arylalkyl optionally substituted by 1-19 R 19 , C 6-10 cycloalkylalkyl optionally substituted by 1-10 R 19 , and 6-21 membered heteroarylalkyl optionally substituted by 1-27 R 19 ; R 4 , R 5 , and R 6 are H; alternatively R 3 and R 6 can, together with the atoms linking them, form a C 3-6 cycloalkyl; and alternatively any of R 1 and R 2 , R 1 and R 3 , R 1 and R 5 , R 1 and R 11 , and R 4 and R 11 can, together with the atoms linking them, form a 3-15 membered heterocycloalkyl optionally substituted by 1-22 R 19 .

›Embodiment 59

The compound of any of Embodiments 1-19, wherein R 1 , R 2 , and R 11 are independently chosen from H and C 1-6 alkyl optionally substituted by 1-13 R 19 ; R 3 is chosen from H, C 1-6 alkyl optionally substituted by 1-13 R 19 , C 7-16 arylalkyl optionally substituted by 1-19 R 19 , C 6-10 cycloalkylalkyl optionally substituted by 1-10 R 19 , and 6-21 membered heteroarylalkyl optionally substituted by 1-27 R 19 ; R 4 , R 5 , and R 6 are H; alternatively R 3 and R 6 can, together with the atoms linking them, form a C 3-6 cycloalkyl; and alternatively any of R 1 and R 2 , R 1 and R 3 , R 1 and R 5 , and R 4 and R 11 can, together with the atoms linking them, form a 3-15 membered heterocycloalkyl optionally substituted by 1-22 R 19 .

›Embodiment 60

The compound of any of Embodiments 1-19, wherein R 1 , R 2 , and R 11 are independently chosen from H and C 1-6 alkyl optionally substituted by 1-13 R 19 ; R 3 is chosen from H, C 1-6 alkyl optionally substituted by 1-13 R 19 , C 7-16 arylalkyl optionally substituted by 1-19 R 19 , C 6-10 cycloalkylalkyl optionally substituted by 1-10 R 19 , and 6-21 membered heteroarylalkyl optionally substituted by 1-27 R 19 ; R 4 , R 5 , and R 6 are H; alternatively R 3 and R 6 can, together with the atoms linking them, form a C 3-6 cycloalkyl.

›Embodiment 61

The compound of any of Embodiments 1-19, wherein R 1 , R 4 , R 5 , R 6 , and R 11 are independently chosen from H and C 1-6 alkyl optionally substituted by 1-13 R 19 ; R 2 is chosen from H, C 1-6 alkyl optionally substituted by 1-13 R 19 , C 7-11 arylalkyl optionally substituted by 1-6 R 19 , and 6-10 membered heteroarylalkyl optionally substituted by 1-6 R 19 ; R 3 is chosen from H, C 1-6 alkyl optionally substituted by 1-13 R 19 , C 7-11 arylalkyl optionally substituted by 1-9 R 19 , C 6-7 cycloalkylalkyl optionally substituted by 1-6 R 19 , and 6-11 membered heteroarylalkyl optionally substituted by 1-7 R 19 ; alternatively R 3 and R 6 can, together with the atoms linking them, form a C 3-6 cycloalkyl; and alternatively any of R 1 and R 2 , R 1 and R 3 , R 1 and R 5 , R 1 and R 11 , and R 4 and R 11 can, together with the atoms linking them, form a 3-7 membered heterocycloalkyl optionally substituted by 1-11 R 19 .

›Embodiment 62

The compound of any of Embodiments 1-19, wherein R 1 , R 4 , R 5 , R 6 , and R 11 are independently chosen from H and C 1-6 alkyl optionally substituted by 1-13 R 19 ; R 2 is chosen from H, C 1-6 alkyl optionally substituted by 1-13 R 19 , C 7-11 arylalkyl optionally substituted by 1-6 R 19 , and 6-10 membered heteroarylalkyl optionally substituted by 1-6 R 19 ; R 3 is chosen from H, C 1-6 alkyl optionally substituted by 1-13 R 19 , C 7-11 arylalkyl optionally substituted by 1-9 R 19 , C 6-7 cycloalkylalkyl optionally substituted by 1-6 R 19 , and 6-11 membered heteroarylalkyl optionally substituted by 1-7 R 19 ; alternatively R 3 and R 6 can, together with the atoms linking them, form a C 3-6 cycloalkyl; and alternatively any of R 1 and R 2 , R 1 and R 3 , R 1 and R 5 , and R 4 and R 11 can, together with the atoms linking them, form a 3-7 membered heterocycloalkyl optionally substituted by 1-11 R 19 .

›Embodiment 63

The compound of any of Embodiments 1-19, wherein R 1 , R 4 , R 5 , R 6 , and R 11 are independently chosen from H and C 1-6 alkyl optionally substituted by 1-13 R 19 ; R 2 is chosen from H, C 1-6 alkyl optionally substituted by 1-13 R 19 , C 7-11 arylalkyl optionally substituted by 1-6 R 19 , and 6-10 membered heteroarylalkyl optionally substituted by 1-6 R 19 ; R 3 is chosen from H, C 1-6 alkyl optionally substituted by 1-13 R 19 , C 7-11 arylalkyl optionally substituted by 1-9 R 19 , C 6-7 cycloalkylalkyl optionally substituted by 1-6 R 19 , and 6-11 membered heteroarylalkyl optionally substituted by 1-7 R 19 ; alternatively R 3 and R 6 can, together with the atoms linking them, form a C 3-6 cycloalkyl.

›Embodiment 64

The compound of any of Embodiments 1-19, wherein R 1 , R 2 , and R 11 are independently chosen from H and C 1-6 alkyl optionally substituted by 1-13 R 19 ; R 3 is chosen from H, C 1-6 alkyl optionally substituted by 1-13 R 19 , C 7-11 arylalkyl optionally substituted by 1-9 R 19 , C 6-7 cycloalkylalkyl optionally substituted by 1-6 R 19 , and 6-11 membered heteroarylalkyl optionally substituted by 1-7 R 19 ; R 4 , R 5 , and R 6 are H; alternatively R 3 and R 6 can, together with the atoms linking them, form a C 3-6 cycloalkyl; alternatively R 3 and R 4 can together form ═O; and alternatively any of R 1 and R 2 , R 1 and R 3 , R 1 and R 5 , R 1 and R 11 , and R 4 and R 11 can, together with the atoms linking them, form a 3-7 membered heterocycloalkyl optionally substituted by 1-11 R 19 .

›Embodiment 65

The compound of any of Embodiments 1-19, wherein R 1 , R 2 , and R 11 are independently chosen from H and C 1-6 alkyl optionally substituted by 1-13 R 19 ; R 3 is chosen from H, C 1-6 alkyl optionally substituted by 1-13 R 19 , C 7-11 arylalkyl optionally substituted by 1-9 R 19 , C 6-7 cycloalkylalkyl optionally substituted by 1-6 R 19 , and 6-11 membered heteroarylalkyl optionally substituted by 1-7 R 19 ; R 4 , R 5 , and R 6 are H; alternatively R 3 and R 6 can, together with the atoms linking them, form a C 3-6 cycloalkyl; alternatively R 3 and R 4 can together form ═O; and alternatively any of R 1 and R 2 , R 1 and R 3 , R 1 and R 5 , and R 4 and R 11 can, together with the atoms linking them, form a 3-7 membered heterocycloalkyl optionally substituted by 1-11 R 19 .

›Embodiment 66

The compound of any of Embodiments 1-19, wherein R 1 , R 2 , and R 11 are independently chosen from H and C 1-6 alkyl optionally substituted by 1-13 R 19 ; R 3 is chosen from H, C 1-6 alkyl optionally substituted by 1-13 R 19 , C 7-11 arylalkyl optionally substituted by 1-9 R 19 , C 6-7 cycloalkylalkyl optionally substituted by 1-6 R 19 , and 6-11 membered heteroarylalkyl optionally substituted by 1-7 R 19 ; R 4 , R 5 , and R 6 are H; alternatively R 3 and R 6 can, together with the atoms linking them, form a C 3-6 cycloalkyl; alternatively R 3 and R 4 can together form ═O.

›Embodiment 67

The compound of any of Embodiments 1-19, wherein R 1 , R 4 , R 5 , R 6 , and R 11 are independently chosen from H and C 1-6 alkyl optionally substituted by 1-13 R 19 ; R 2 is chosen from H, C 1-6 alkyl optionally substituted by 1-13 R 19 , C 7-11 arylalkyl optionally substituted by 1-6 R 19 , and 6-10 membered heteroarylalkyl optionally substituted by 1-6 R 19 ; R 3 is chosen from H, C 1-6 alkyl optionally substituted by 1-13 R 19 , C 7-11 arylalkyl optionally substituted by 1-9 R 19 , C 6-7 cycloalkylalkyl optionally substituted by 1-6 R 19 , and 6-11 membered heteroarylalkyl optionally substituted by 1-7 R 19 ; alternatively R 3 and R 6 can, together with the atoms linking them, form a cyclopropyl group optionally substituted by 1-3 R 19 ; and alternatively any of R 1 and R 3 , R 1 and R 5 , R 1 and R 11 , and R 4 and R 11 can, together with the atoms linking them, form a 3-7 membered heterocycloalkyl optionally substituted by 1-11 R 19 .

›Embodiment 68

The compound of any of Embodiments 1-19, wherein R 1 , R 4 , R 5 , R 6 , and R 11 are independently chosen from H and C 1-6 alkyl optionally substituted by 1-13 R 19 ; R 2 is chosen from H, C 1-6 alkyl optionally substituted by 1-13 R 19 , C 7-11 arylalkyl optionally substituted by 1-6 R 19 , and 6-10 membered heteroarylalkyl optionally substituted by 1-6 R 19 ; R 3 is chosen from H, C 1-6 alkyl optionally substituted by 1-13 R 19 , C 7-11 arylalkyl optionally substituted by 1-9 R 19 , C 6-7 cycloalkylalkyl optionally substituted by 1-6 R 19 , and 6-11 membered heteroarylalkyl optionally substituted by 1-7 R 19 ; alternatively R 3 and R 6 can, together with the atoms linking them, form a cyclopropyl group optionally substituted by 1-3 R 19 ; and alternatively any of R 1 and R 3 , R 1 and R 5 , and R 4 and R 11 can, together with the atoms linking them, form a 3-7 membered heterocycloalkyl optionally substituted by 1-11 R 19 .

›Embodiment 69

The compound of any of Embodiments 1-19, wherein R 1 , R 4 , R 5 , R 6 , and R 11 are independently chosen from H and C 1-6 alkyl optionally substituted by 1-13 R 19 ; R 2 is chosen from H, C 1-6 alkyl optionally substituted by 1-13 R 19 , C 7-11 arylalkyl optionally substituted by 1-6 R 19 , and 6-10 membered heteroarylalkyl optionally substituted by 1-6 R 19 ; R 3 is chosen from H, C 1-6 alkyl optionally substituted by 1-13 R 19 , C 7-11 arylalkyl optionally substituted by 1-9 R 19 , C 6-7 cycloalkylalkyl optionally substituted by 1-6 R 19 , and 6-11 membered heteroarylalkyl optionally substituted by 1-7 R 19 ; alternatively R 3 and R 6 can, together with the atoms linking them, form a cyclopropyl group optionally substituted by 1-3 R 19 .

›Embodiment 70

The compound of any of Embodiments 1-19, wherein R 1 , R 2 , and R 11 are independently chosen from H and C 1-6 alkyl optionally substituted by 1-13 R 19 ; R 3 is chosen from H, C 1-6 alkyl optionally substituted by 1-13 R 19 , C 7-11 arylalkyl optionally substituted by 1-9 R 19 , C 6-7 cycloalkylalkyl optionally substituted by 1-6 R 19 , and 6-11 membered heteroarylalkyl optionally substituted by 1-7 R 19 ; R 4 , R 5 , and R 6 are H; alternatively R 3 and R 6 can, together with the atoms linking them, form a cyclopropyl group; and alternatively any of R 1 and R 3 , R 1 and R 5 , R 1 and R 11 , and R 4 and R 11 can, together with the atoms linking them, form a 3-7 membered heterocycloalkyl optionally substituted by 1-11 R 19 .

›Embodiment 71

The compound of any of Embodiments 1-19, wherein R 1 , R 2 , and R 11 are independently chosen from H and C 1-6 alkyl optionally substituted by 1-13 R 19 ; R 3 is chosen from H, C 1-6 alkyl optionally substituted by 1-13 R 19 , C 7-11 arylalkyl optionally substituted by 1-9 R 19 , C 6-7 cycloalkylalkyl optionally substituted by 1-6 R 19 , and 6-11 membered heteroarylalkyl optionally substituted by 1-7 R 19 ; R 4 , R 5 , and R 6 are H; alternatively R 3 and R 6 can, together with the atoms linking them, form a cyclopropyl group; and alternatively any of R 1 and R 3 , R 1 and R 5 , and R 4 and R 11 can, together with the atoms linking them, form a 3-7 membered heterocycloalkyl optionally substituted by 1-11 R 19 .

›Embodiment 72

The compound of any of Embodiments 1-19, wherein R 1 , R 2 , and R 11 are independently chosen from H and C 1-6 alkyl optionally substituted by 1-13 R 19 ; R 3 is chosen from H, C 1-6 alkyl optionally substituted by 1-13 R 19 , C 7-11 arylalkyl optionally substituted by 1-9 R 19 , C 6-7 cycloalkylalkyl optionally substituted by 1-6 R 19 , and 6-11 membered heteroarylalkyl optionally substituted by 1-7 R 19 ; R 4 , R 5 , and R 6 are H; alternatively R 3 and R 6 can, together with the atoms linking them, form a cyclopropyl group.

›Embodiment 73

The compound of any of Embodiments 1-19, wherein R 1 , R 4 , R 5 , R 6 , and R 11 are independently chosen from H and C 1-6 alkyl optionally substituted by 1-3 R 19 ; R 2 is chosen from H, C 1-6 alkyl optionally substituted by 1-3 R 19 , C 7-11 arylalkyl optionally substituted by 1-3 R 19 , and 6-10 membered heteroarylalkyl optionally substituted by 1-3 R 19 ; R 3 is chosen from H, C 1-6 alkyl optionally substituted by 1-3 R 19 , C 7-11 arylalkyl optionally substituted by 1-9 R 19 , C 6-7 cycloalkylalkyl optionally substituted by 1-6 R 19 , and 6-11 membered heteroarylalkyl optionally substituted by 1-7 R 19 ; and alternatively any of R 1 and R 2 , R 1 and R 3 , R 1 and R 5 , R 1 and R 11 , and R 4 and R 11 can, together with the atoms linking them, form a 3-7 membered heterocycloalkyl optionally substituted by 1-3 R 19 .

›Embodiment 74

The compound of any of Embodiments 1-19, wherein R 1 , R 4 , R 5 , R 6 , and R 11 are independently chosen from H and C 1-6 alkyl optionally substituted by 1-3 R 19 ; R 2 is chosen from H, C 1-6 alkyl optionally substituted by 1-3 R 19 , C 7-11 arylalkyl optionally substituted by 1-3 R 19 , and 6-10 membered heteroarylalkyl optionally substituted by 1-3 R 19 ; R 3 is chosen from H, C 1-6 alkyl optionally substituted by 1-3 R 19 , C 7-11 arylalkyl optionally substituted by 1-9 R 19 , C 6-7 cycloalkylalkyl optionally substituted by 1-6 R 19 , and 6-11 membered heteroarylalkyl optionally substituted by 1-7 R 19 ; and alternatively any of R 1 and R 2 , R 1 and R 3 , R 1 and R 5 , and R 4 and R 11 can, together with the atoms linking them, form a 3-7 membered heterocycloalkyl optionally substituted by 1-3 R 19 .

›Embodiment 75

The compound of any of Embodiments 1-19, wherein R 1 , R 4 , R 5 , R 6 , and R 11 are independently chosen from H and C 1-6 alkyl optionally substituted by 1-3 R 19 ; R 2 is chosen from H, C 1-6 alkyl optionally substituted by 1-3 R 19 , C 7-11 arylalkyl optionally substituted by 1-3 R 19 , and 6-10 membered heteroarylalkyl optionally substituted by 1-3 R 19 ; R 3 is chosen from H, C 1-6 alkyl optionally substituted by 1-3 R 19 , C 7-11 arylalkyl optionally substituted by 1-9 R 19 , C 6-7 cycloalkylalkyl optionally substituted by 1-6 R 19 , and 6-11 membered heteroarylalkyl optionally substituted by 1-7 R 19 ; and alternatively any of R 1 and R 2 , R 1 and R 3 , R 1 and R 5 , R 1 and R 11 , and R 4 and R 11 can, together with the atoms linking them, form a 3-7 membered heterocycloalkyl optionally substituted by 1-3 R 19 .

›Embodiment 76

The compound of any of Embodiments 1-19, wherein R 1 , R 2 , and R 11 are independently chosen from H and C 1-6 alkyl optionally substituted by 1-3 R 19 ; R 3 is chosen from H, C 1-6 alkyl optionally substituted by 1-3 R 19 , C 7-11 arylalkyl optionally substituted by 1-9 R 19 , C 6-7 cycloalkylalkyl optionally substituted by 1-6 R 19 , and 6-11 membered heteroarylalkyl optionally substituted by 1-7 R 19 ; R 4 , R 5 , and R 6 are H.

›Embodiment 77

The compound of any of Embodiments 1-19, wherein R 1 , R 2 , R 4 , R 5 , R 6 , and R 11 are independently chosen from H and C 1-6 alkyl optionally substituted by 1-3 R 19 ; R 3 is chosen from H, C 1-6 alkyl optionally substituted by 1-3 R 19 , C 7-11 arylalkyl optionally substituted by 1-3 R 19 , C 6-7 cycloalkylalkyl optionally substituted by 1-3 R 19 , and 6-11 membered heteroarylalkyl optionally substituted by 1-3 R 19 ; and alternatively any of R 1 and R 3 , R 1 and R 5 , R 1 and R 11 , and R 4 and R 11 can, together with the atoms linking them, form a 3-7 membered heterocycloalkyl optionally substituted by 1-3 R 19 .

›Embodiment 78

The compound of any of Embodiments 1-19, wherein R 1 , R 2 , R 4 , R 5 , R 6 , and R 11 are independently chosen from H and C 1-6 alkyl optionally substituted by 1-3 R 19 ; R 3 is chosen from H, C 1-6 alkyl optionally substituted by 1-3 R 19 , C 7-11 arylalkyl optionally substituted by 1-3 R 19 , C 6-7 cycloalkylalkyl optionally substituted by 1-3 R 19 , and 6-11 membered heteroarylalkyl optionally substituted by 1-3 R 19 ; and alternatively any of R 1 and R 3 , R 1 and R 5 , and R 4 and R 11 can, together with the atoms linking them, form a 3-7 membered heterocycloalkyl optionally substituted by 1-3 R 19 .

›Embodiment 79

The compound of any of Embodiments 1-19, wherein R 1 , R 2 , R 4 , R 5 , R 6 , and R 11 are independently chosen from H and C 1-6 alkyl optionally substituted by 1-3 R 19 ; R 3 is chosen from H, C 1-6 alkyl optionally substituted by 1-3 R 19 , C 7-11 arylalkyl optionally substituted by 1-3 R 19 , C 6-7 cycloalkylalkyl optionally substituted by 1-3 R 19 , and 6-11 membered heteroarylalkyl optionally substituted by 1-3 R 19 .

›Embodiment 80

The compound of any of Embodiments 1-19, wherein R 1 , R 2 , and R 11 are independently chosen from H and C 1-6 alkyl optionally substituted by 1-3 R 19 ; R 3 is chosen from H, C 1-6 alkyl optionally substituted by 1-3 R 19 , C 7-11 arylalkyl optionally substituted by 1-3 R 19 , C 6-7 cycloalkylalkyl optionally substituted by 1-3 R 19 , and 6-11 membered heteroarylalkyl optionally substituted by 1-3 R 19 ; R 4 , R 5 , and R 6 are H; and alternatively any of R 1 and R 3 , R 1 and R 5 , R 1 and R 11 , and R 4 and R 11 can, together with the atoms linking them, form a 5-7 membered heterocycloalkyl optionally substituted by 1-3 R 19 .

›Embodiment 81

The compound of any of Embodiments 1-19, wherein R 1 , R 2 , and R 11 are independently chosen from H and C 1-6 alkyl optionally substituted by 1-3 R 19 ; R 3 is chosen from H, C 1-6 alkyl optionally substituted by 1-3 R 19 , C 7-11 arylalkyl optionally substituted by 1-3 R 19 , C 6-7 cycloalkylalkyl optionally substituted by 1-3 R 19 , and 6-11 membered heteroarylalkyl optionally substituted by 1-3 R 19 ; R 4 , R 5 , and R 6 are H; and alternatively any of R 1 and R 3 , R 1 and R 5 , and R 4 and R 11 can, together with the atoms linking them, form a 5-7 membered heterocycloalkyl optionally substituted by 1-3 R 19 .

›Embodiment 82

The compound of any of Embodiments 1-19, wherein R 1 , R 2 , and R 11 are independently chosen from H and C 1-6 alkyl optionally substituted by 1-3 R 19 ; R 3 is chosen from H, C 1-6 alkyl optionally substituted by 1-3 R 19 , C 7-11 arylalkyl optionally substituted by 1-3 R 19 , C 6-7 cycloalkylalkyl optionally substituted by 1-3 R 19 , and 6-11 membered heteroarylalkyl optionally substituted by 1-3 R 19 ; R 4 , R 5 , and R 6 are H.

›Embodiment 83

The compound of any of Embodiments 1-19, wherein R 1 , R 2 , and R 11 are independently chosen from H and C 1-6 alkyl optionally substituted by 1-3 R 19 ; R 3 is chosen from H, C 1-6 alkyl optionally substituted by 1-3 R 19 , C 7-11 arylalkyl optionally substituted by 1-3 R 19 , C 6-7 cycloalkylalkyl optionally substituted by 1-3 R 19 , and 6-11 membered heteroarylalkyl optionally substituted by 1-3 R 19 ; R 4 , R 5 , and R 6 are H; alternatively any of R 1 and R 3 , R 1 and R 5 , and R 4 and R 11 can, together with the atoms linking them, form a 5-6 membered heterocycloalkyl optionally substituted by 1-3 R 19 ; and alternatively R 1 and R 11 can, together with the atoms linking them, form a 5-7 membered heterocycloalkyl optionally substituted by 1-3 R 19 .

›Embodiment 84

The compound of any of Embodiments 1-19, wherein R 1 , R 2 , and R 11 are independently chosen from H and C 1-6 alkyl optionally substituted by 1-3 R 19 ; R 3 is chosen from H, C 1-6 alkyl optionally substituted by 1-3 R 19 , C 7-11 arylalkyl optionally substituted by 1-3 R 19 , C 6-7 cycloalkylalkyl optionally substituted by 1-3 R 19 , and 6-11 membered heteroarylalkyl optionally substituted by 1-3 R 19 ; R 4 , R 5 , and R 6 are H; alternatively any of R 1 and R 3 , R 1 and R 5 , and R 4 and R 11 can, together with the atoms linking them, form a 5-6 membered heterocycloalkyl optionally substituted by 1-3 R 19 .

›Embodiment 85

The compound of any of Embodiments 1-19, wherein R 1 , R 2 , and R 11 are independently chosen from H and C 1-6 alkyl optionally substituted by 1-3 R 19 ; R 3 is chosen from H, C 1-6 alkyl optionally substituted by 1-3 R 19 , C 7-11 arylalkyl optionally substituted by 1-3 R 19 , C 6-7 cycloalkylalkyl optionally substituted by 1-3 R 19 , and 6-11 membered heteroarylalkyl optionally substituted by 1-3 R 19 ; R 4 , R 5 , and R 6 are H; alternatively any of R 1 and R 3 , and R 4 and R 11 can, together with the atoms linking them, form a 5 membered heterocycloalkyl optionally substituted by 1-3 R 19 ; alternatively R 1 and R 5 can, together with the atoms linking them, form a 5-6 membered heterocycloalkyl optionally substituted by 1-3 R 19 ; and alternatively R 1 and R 11 can, together with the atoms linking them, form a 6-7 membered heterocycloalkyl optionally substituted by 1-3 R 19 .

›Embodiment 86

The compound of any of Embodiments 1-19, wherein R 1 , R 2 , and R 11 are independently chosen from H and C 1-6 alkyl optionally substituted by 1-3 R 19 ; R 3 is chosen from H, C 1-6 alkyl optionally substituted by 1-3 R 19 , C 7-11 arylalkyl optionally substituted by 1-3 R 19 , C 6-7 cycloalkylalkyl optionally substituted by 1-3 R 19 , and 6-11 membered heteroarylalkyl optionally substituted by 1-3 R 19 ; R 4 , R 5 , and R 6 are H; alternatively any of R 1 and R 3 , and R 4 and R 11 can, together with the atoms linking them, form a 5 membered heterocycloalkyl optionally substituted by 1-3 R 19 ; alternatively R 1 and R 5 can, together with the atoms linking them, form a 5-6 membered heterocycloalkyl optionally substituted by 1-3 R 19 .

›Embodiment 87

The compound of any of Embodiments 1-19, wherein R 1 and R 11 are independently chosen from H and C 1-6 alkyl optionally substituted by 1-3 R 19 ; R 2 is chosen from H, C 1-6 alkyl optionally substituted by 1-3 R 19 , and C 7-11 arylalkyl optionally substituted by 1-3 R 19 ; R 3 is chosen from H, C 1-6 alkyl optionally substituted by 1-3 R 19 , C 7-11 arylalkyl optionally substituted by 1-3 R 19 , C 6-7 cycloalkylalkyl optionally substituted by 1-3 R 19 , and 6-11 membered heteroarylalkyl optionally substituted by 1-3 R 19 ; R 4 , R 5 , and R 6 are H; alternatively any of R 1 and R 3 , and R 4 and R 11 can, together with the atoms linking them, form a 5 membered heterocycloalkyl optionally substituted by 1-3 R 19 ; alternatively R 1 and R 5 can, together with the atoms linking them, form a 5-6 membered heterocycloalkyl optionally substituted by 1-3 R 19 ; and alternatively R 1 and R 11 can, together with the atoms linking them, form a 6-7 membered heterocycloalkyl optionally substituted by 1-3 R 19 .

›Embodiment 88

The compound of any of Embodiments 1-19, wherein R 1 and R 11 are independently chosen from H and C 1-6 alkyl optionally substituted by 1-3 R 19 ; R 2 is chosen from H, C 1-6 alkyl optionally substituted by 1-3 R 19 , and C 7-11 arylalkyl optionally substituted by 1-3 R 19 ; R 3 is chosen from H, C 1-6 alkyl optionally substituted by 1-3 R 19 , C 7-11 arylalkyl optionally substituted by 1-3 R 19 , C 6-7 cycloalkylalkyl optionally substituted by 1-3 R 19 , and 6-11 membered heteroarylalkyl optionally substituted by 1-3 R 19 ; R 4 , R 5 , and R 6 are H; alternatively any of R 1 and R 3 , and R 4 and R 11 can, together with the atoms linking them, form a 5 membered heterocycloalkyl optionally substituted by 1-3 R 19 ; alternatively R 1 and R 5 can, together with the atoms linking them, form a 5-6 membered heterocycloalkyl optionally substituted by 1-3 R 19 .

›Embodiment 89

The compound of any of Embodiments 1-19, wherein R 1 and R 11 are independently chosen from H and C 1-6 alkyl optionally substituted by 1-3 R 19 ; R 2 is H; R 3 is chosen from H, C 1-6 alkyl optionally substituted by 1-3 R 19 , C 7-11 arylalkyl optionally substituted by 1-3 R 19 , C 6-7 cycloalkylalkyl optionally substituted by 1-3 R 19 , and 6-11 membered heteroarylalkyl optionally substituted by 1-3 R 19 ; R 4 , R 5 , and R 6 are H; alternatively R 1 and R 5 can, together with the atoms linking them, form a 5-6 membered heterocycloalkyl optionally substituted by 1-3 R 19 ; and alternatively R 1 and R 11 can, together with the atoms linking them, form a 6-7 membered heterocycloalkyl optionally substituted by 1-3 R 19 .

›Embodiment 90

The compound of any of Embodiments 1-19, wherein R 1 and R 11 are independently chosen from H and C 1-6 alkyl optionally substituted by 1-3 R 19 ; R 2 is H; R 3 is chosen from H, C 1-6 alkyl optionally substituted by 1-3 R 19 , C 7-11 arylalkyl optionally substituted by 1-3 R 19 , C 6-7 cycloalkylalkyl optionally substituted by 1-3 R 19 , and 6-11 membered heteroarylalkyl optionally substituted by 1-3 R 19 ; R 4 , R 5 , and R 6 are H; alternatively R 1 and R 5 can, together with the atoms linking them, form a 5-6 membered heterocycloalkyl optionally substituted by 1-3 R 19 .

›Embodiment 91

The compound of any of Embodiments 1-19, wherein R 1 , R 2 , and R 11 are independently chosen from H and C 1-6 alkyl optionally substituted by 1-3 R 19 ; R 3 is chosen from H, C 1-6 alkyl optionally substituted by 1-3 R 19 , C 7-11 arylalkyl optionally substituted by 1-3 R 19 , C 6-7 cycloalkylalkyl optionally substituted by 1-3 R 19 , and 6-11 membered heteroarylalkyl optionally substituted by 1-3 R 19 ; R 4 , R 5 , and R 6 are H; alternatively R 1 and R 5 can, together with the atoms linking them, form a 5-6 membered heterocycloalkyl optionally substituted by 1-3 R 19 ; and alternatively R 1 and R 11 can, together with the atoms linking them, form a 6-7 membered heterocycloalkyl optionally substituted by 1-3 R 19 .

›Embodiment 92

The compound of any of Embodiments 1-19, wherein R 1 , R 2 , and R 11 are independently chosen from H and C 1-6 alkyl optionally substituted by 1-3 R 19 ; R 3 is chosen from H, C 1-6 alkyl optionally substituted by 1-3 R 19 , C 7-11 arylalkyl optionally substituted by 1-3 R 19 , C 6-7 cycloalkylalkyl optionally substituted by 1-3 R 19 , and 6-11 membered heteroarylalkyl optionally substituted by 1-3 R 19 ; R 4 , R 5 , and R 6 are H; alternatively R 1 and R 5 can, together with the atoms linking them, form a 5-6 membered heterocycloalkyl optionally substituted by 1-3 R 19 .

›Embodiment 93

The compound of any of Embodiments 1-19, wherein R 1 , R 2 , and R 11 are independently chosen from H and C 1-6 alkyl optionally substituted by 1-3 R 19 ; R 3 is chosen from H, C 1-6 alkyl optionally substituted by 1-3 R 19 , C 7-11 arylalkyl optionally substituted by 1-3 R 19 , C 6-7 cycloalkylalkyl optionally substituted by 1-3 R 19 , and 6-11 membered heteroarylalkyl optionally substituted by 1-3 R 19 ; R 4 , R 5 , and R 6 are H; alternatively R 1 and R 5 can, together with the atoms linking them, form a 5-6 membered heterocycloalkyl optionally substituted by 1-3 R 19 ; and alternatively R 1 and R 11 can, together with the atoms linking them, form a 6-7 membered heterocycloalkyl optionally substituted by 1-3 R 19 .

›Embodiment 94

The compound of any of Embodiments 1-19, wherein R 1 , R 2 , and R 11 are independently chosen from H and C 1-6 alkyl optionally substituted by 1-3 R 19 ; R 3 is chosen from H, C 1-6 alkyl optionally substituted by 1-3 R 19 , C 7-11 arylalkyl optionally substituted by 1-3 R 19 , C 6-7 cycloalkylalkyl optionally substituted by 1-3 R 19 , and 6-11 membered heteroarylalkyl optionally substituted by 1-3 R 19 ; R 4 , R 5 , and R 6 are H; alternatively R 1 and R 5 can, together with the atoms linking them, form a 5-6 membered heterocycloalkyl optionally substituted by 1-3 R 19 .

›Embodiment 95

The compound of any of Embodiments 1-19, wherein R 1 and R 11 are independently chosen from H and C 1-6 alkyl optionally substituted by 1-3 R 19 ; R 2 is chosen from H, C 1-6 alkyl optionally substituted by 1-3 R 19 , and C 7-11 arylalkyl optionally substituted by 1-3 R 19 ; R 3 is chosen from H, C 1-6 alkyl optionally substituted by 1-3 R 19 , C 7-11 arylalkyl optionally substituted by 1-3 R 19 , C 6-7 cycloalkylalkyl optionally substituted by 1-3 R 19 , and 6-11 membered heteroarylalkyl optionally substituted by 1-3 R 19 ; R 4 , R 5 , and R 6 are H; alternatively R 1 and R 5 can, together with the atoms linking them, form a 5-6 membered heterocycloalkyl optionally substituted by 1-3 R 19 ; and alternatively R 1 and R 11 can, together with the atoms linking them, form a 6-7 membered heterocycloalkyl optionally substituted by 1-3 R 19 .

›Embodiment 96

The compound of any of Embodiments 1-19, wherein R 1 and R 11 are independently chosen from H and C 1-6 alkyl optionally substituted by 1-3 R 19 ; R 2 is chosen from H, C 1-6 alkyl optionally substituted by 1-3 R 19 , and C 7-11 arylalkyl optionally substituted by 1-3 R 19 ; R 3 is chosen from H, C 1-6 alkyl optionally substituted by 1-3 R 19 , C 7-11 arylalkyl optionally substituted by 1-3 R 19 , C 6-7 cycloalkylalkyl optionally substituted by 1-3 R 19 , and 6-11 membered heteroarylalkyl optionally substituted by 1-3 R 19 ; R 4 , R 5 , and R 6 are H; alternatively R 1 and R 5 can, together with the atoms linking them, form a 5-6 membered heterocycloalkyl optionally substituted by 1-3 R 19 .

›Embodiment 97

The compound of any of Embodiments 1-19, wherein R 1 , R 2 , R 4 , R 5 , R 6 , and R 11 are H; R 3 is chosen from H, C 1-6 alkyl optionally substituted by 1-3 R 19 , C 7-11 arylalkyl optionally substituted by 1-3 R 19 , C 6-7 cycloalkylalkyl optionally substituted by 1-3 R 19 , and 6-11 membered heteroarylalkyl optionally substituted by 1-3 R 19 ; alternatively R 1 and R 5 can, together with the atoms linking them, form a 5-6 membered heterocycloalkyl optionally substituted by 1-3 R 19 ; and alternatively R 1 and R 11 can, together with the atoms linking them, form a 5-7 membered heterocycloalkyl optionally substituted by 1-3 R 19 .

›Embodiment 98

The compound of any of Embodiments 1-19, wherein R 1 , R 2 , R 4 , R 5 , R 6 , and R 11 are H; R 3 is chosen from H, C 1-6 alkyl optionally substituted by 1-3 R 19 , C 7-11 arylalkyl optionally substituted by 1-3 R 19 , C 6-7 cycloalkylalkyl optionally substituted by 1-3 R 19 , and 6-11 membered heteroarylalkyl optionally substituted by 1-3 R 19 ; alternatively R 1 and R 5 can, together with the atoms linking them, form a 5-6 membered heterocycloalkyl optionally substituted by 1-3 R 19 .

›Embodiment 99

The compound of any of Embodiments 1-19, wherein R 1 , R 2 , R 4 , R 5 , R 6 , and R 11 are H; R 3 is chosen from H, C 1-6 alkyl optionally substituted by 1-3 R 19 , C 7-11 arylalkyl optionally substituted by 1-3 R 19 , C 6-7 cycloalkylalkyl optionally substituted by 1-3 R 19 , and 6-11 membered heteroarylalkyl optionally substituted by 1-3 R 19 ; alternatively R 1 and R 5 can, together with the atoms linking them, form a 5 membered heterocycloalkyl optionally substituted by 1-3 R 19 ; and alternatively R 1 and R 11 can, together with the atoms linking them, form a 6 membered heterocycloalkyl optionally substituted by 1-3 R 19 .

›Embodiment 100

The compound of any of Embodiments 1-19, wherein R 1 , R 2 , R 4 , R 5 , R 6 , and R 11 are H; R 3 is chosen from H, C 1-6 alkyl optionally substituted by 1-3 R 19 , C 7-11 arylalkyl optionally substituted by 1-3 R 19 , C 6-7 cycloalkylalkyl optionally substituted by 1-3 R 19 , and 6-11 membered heteroarylalkyl optionally substituted by 1-3 R 19 ; alternatively R 1 and R 5 can, together with the atoms linking them, form a 5 membered heterocycloalkyl optionally substituted by 1-3 R 19 .

›Embodiment 101

The compound of any of Embodiments 1-19, wherein R 1 , R 2 , R 4 , R 5 , R 6 , and R 11 are H; R 3 is chosen from H, C 1-6 alkyl optionally substituted by 1-3 R 19 , benzyl optionally substituted by 1-3 R 19 , C 7 cycloalkylalkyl optionally substituted by 1-3 R 19 , and 6-7 membered heteroarylalkyl optionally substituted by 1-3 R 19 ; alternatively R 1 and R 5 can, together with the atoms linking them, form a pyrrolidinyl group optionally substituted by 1-3 R 19 ; and alternatively R 1 and R 11 can, together with the atoms linking them, form a piperidinyl group optionally substituted by 1-3 R 19 .

›Embodiment 102

The compound of any of Embodiments 1-19, wherein R 1 , R 2 , R 4 , R 5 , R 6 , and R 11 are H; R 3 is chosen from H, C 1-6 alkyl optionally substituted by 1-3 R 19 , benzyl optionally substituted by 1-3 R 19 , C 7 cycloalkylalkyl optionally substituted by 1-3 R 19 , and 6-7 membered heteroarylalkyl optionally substituted by 1-3 R 19 ; alternatively R 1 and R 5 can, together with the atoms linking them, form a pyrrolidinyl group optionally substituted by 1-3 R 19 .

›Embodiment 103

The compound of any of Embodiments 1-19, wherein R 1 , R 2 , R 4 , R 5 , R 6 , and R 11 are H; R 3 is chosen from H, C 1-6 alkyl optionally substituted by 1-3 R 19 , benzyl optionally substituted by 1-3 R 19 , C 7 cycloalkylalkyl optionally substituted by 1-3 R 19 , and 6-7 membered heteroarylalkyl optionally substituted by 1-3 R 19 ; alternatively R 1 and R 5 can, together with the atoms linking them, form a pyrrolidinyl group; and alternatively R 1 and R 11 can, together with the atoms linking them, form a piperidinyl group.

›Embodiment 104

The compound of any of Embodiments 1-19, wherein R 1 , R 2 , R 4 , R 5 , R 6 , and R 11 are H; R 3 is chosen from H, C 1-6 alkyl optionally substituted by 1-3 R 19 , benzyl optionally substituted by 1-3 R 19 , C 7 cycloalkylalkyl optionally substituted by 1-3 R 19 , and 6-7 membered heteroarylalkyl optionally substituted by 1-3 R 19 ; alternatively R 1 and R 5 can, together with the atoms linking them, form a pyrrolidinyl group.

›Embodiment 105

The compound of any of Embodiments 1-19, wherein R 1 , R 2 , R 4 , R 5 , R 6 , and R 11 are H; R 3 is benzyl optionally substituted by 1-3 R 19 ; alternatively R 1 and R 5 can, together with the atoms linking them, form a pyrrolidinyl group; and alternatively R 1 and R 11 can, together with the atoms linking them, form a piperidinyl group.

›Embodiment 106

The compound of any of Embodiments 1-19, wherein R 1 , R 2 , R 4 , R 5 , R 6 , and R 11 are H; R 3 is benzyl optionally substituted by 1-3 R 19 ; alternatively R 1 and R 5 can, together with the atoms linking them, form a pyrrolidinyl group.

›Embodiment 107

The compound of any of Embodiments 1-19, wherein R 1 , R 2 , R 4 , R 5 , R 6 , and R 11 are H; R 3 is benzyl; alternatively R 1 and R 5 can, together with the atoms linking them, form a pyrrolidinyl group; and alternatively R 1 and R 11 can, together with the atoms linking them, form a piperidinyl group.

›Embodiment 108

The compound of any of Embodiments 1-19, wherein R 1 , R 2 , R 4 , R 5 , R 6 , and R 11 are H; R 3 is benzyl; alternatively R 1 and R 5 can, together with the atoms linking them, form a pyrrolidinyl group.

›Embodiment 109

The compound of any of Embodiments 1-108, wherein R 7 , R 8 , R 9 , and R 10 are independently chosen from H, C 1-6 alkyl optionally substituted by 1-13 R 19 , C 2-6 alkenyl optionally substituted by 1-11 R 19 , C 2-6 alkynyl optionally substituted by 1-9 R 19 , C 6-11 aryl optionally substituted by 1-11 R 19 , C 7-16 arylalkyl optionally substituted by 1-19 R 19 , C 3-11 cycloalkyl optionally substituted by 1-21 R 19 , C 4-7 cycloalkylalkyl optionally substituted by 1-32 R 19 , 3-15 membered heterocycloalkyl optionally substituted by 1-28 R 19 , 4-21 membered heterocycloalkylalkyl optionally substituted by 1-40 R 19 , 5-15 membered heteroaryl optionally substituted by 1-15 R 19 , 6-21 membered heteroarylalkyl optionally substituted by 1-27 R 19 , halogen, —CN, —C(═O)R 20 , —C(═O)OR 20 , —C(═O)NR 22 R 23 , —C(═O)C(═O)R 20 , —C(═NR 25 )R 20 , —C(═NR 25 )NR 22 R 23 , —C(═NOH)NR 22 R 23 , —C(═NOR 26 )R 20 , —C(═NNR 22 R 23 )R 20 , —C(═NNR 24 C(═O)R 21 )R 20 , —C(═NNR 24 C(═O)OR 21 )R 20 , —C(═S)NR 22 R 23 , —NC, —NO 2 , —NR 22 R 23 , —NR 24 NR 22 R 23 , —N═NR 24 , —NR 24 OR 26 , —NR 24 C(═O)R 20 , —NR 24 C(═O)C(═O)R 20 , —NR 24 C(═O)OR 21 , —NR 24 C(═O)C(═O)OR 21 , —NR 24 C(═O)NR 22 R 23 , —NR 24 C(═O)NR 24 C(═O)R 20 , —NR 24 C(═O)NR 24 C(═O)OR 20 , —NR 24 C(═NR 25 )NR 22 R 23 , —NR 24 C(═O)C(═O)NR 22 R 23 , —NR 24 C(═S)R 20 , —NR 24 C(═S)OR 20 , —NR 24 C(═S)NR 22 R 23 , —NR 24 S(═O) 2 R 21 , —NR 24 S(═O) 2 NR 22 R 23 , —NR 24 P(═O)R 28 R 28 , —NR 24 P(═O)(NR 22 R 23 )(NR 22 R 23 ), —NR 24 P(═O)(OR 20 )(OR 20 ), —NR 24 P(═O)(SR 20 )(SR 20 ), —OR 20 , —OCN, —OC(═O)R 20 , —OC(═O)NR 22 R 23 , —OC(═O)OR 20 , —OC(═NR 25 )NR 22 R 23 , —OS(═O)R 20 , —OS(═O) 2 R 20 , —OS(═O) 2 OR 20 , —OS(═O) 2 NR 22 R 23 , —OP(═O)R 28 R 28 , —OP(═O)(NR 22 R 23 )(NR 22 R 23 ), —OP(═O)(OR 20 )(OR 20 ), —OP(═O)(SR 20 )(SR 20 ), —Si(R 24 ) 3 , —SCN, —S(═O) n R 20 , —S(═O) 2 OR 20 , —SO 3 R 27 , —S(═O) 2 NR 22 R 23 , —S(═O)NR 22 R 23 , —SP(═O)R 28 R 28 , —SP(═O)(NR 22 R 23 )(NR 22 R 23 ), —SP(═O)(OR 20 )(OR 20 ), —SP(═O)(SR 20 )(SR 20 ), —P(═O)R 28 R 28 , —P(═O)(NR 22 R 23 )(NR 22 R 23 ), —P(═O)(OR 20 )(OR 20 ), and —P(═O)(SR 20 )(SR 20 ); alternatively, either or both of R 7 and R 8 , and/or R 9 and R 10 , can, together with the atoms linking them, form a C 6-11 aryl optionally substituted by 1-11 R 19 , C 3-11 cycloalkyl optionally substituted by 1-21 R 19 , 3-15 membered heterocycloalkyl optionally substituted by 1-28 R 19 or a 5-15 membered heteroaryl optionally substituted by 1-15 R 19 .

›Embodiment 110

The compound of any of Embodiments 1-108, wherein R 7 , R 8 , R 9 , and R 10 are independently chosen from H, C 1-6 alkyl optionally substituted by 1-13 R 19 , C 2-6 alkenyl optionally substituted by 1-11 R 19 , C 2-6 alkynyl optionally substituted by 1-9 R 19 , C 6-11 aryl optionally substituted by 1-11 R 19 , C 7-16 arylalkyl optionally substituted by 1-19 R 19 , C 3-11 cycloalkyl optionally substituted by 1-21 R 19 , C 4-17 cycloalkylalkyl optionally substituted by 1-32 R 19 , 3-15 membered heterocycloalkyl optionally substituted by 1-28 R 19 , 4-21 membered heterocycloalkylalkyl optionally substituted by 1-40 R 19 , 5-15 membered heteroaryl optionally substituted by 1-15 R 19 , 6-21 membered heteroarylalkyl optionally substituted by 1-27 R 19 , halogen, —CN, —C(═O)R 20 , —C(═O)OR 20 , —C(═O)NR 22 R 23 , —NC, —NO 2 , —NR 22 R 23 , —NR 24 OR 26 , —NR 24 C(═O)R 20 , —NR 24 C(═O)OR 21 , —NR 24 C(═O)NR 22 R 23 , —NR 24 S(═O) 2 R 21 , —NR 24 S(═O) 2 NR 22 R 23 , —OR 20 , —OCN, —OC(═O)R 20 , —OC(═O)NR 22 R 23 , —OC(═O)OR 20 , —OS(═O) 2 R 20 , —OS(═O) 2 OR 20 , —OS(═O) 2 NR 22 R 23 , —S(═O) n R 20 , and —S(═O) 2 NR 22 R 23 ; alternatively, either or both of R 7 and R 8 , and/or R 9 and R 10 , can, together with the atoms linking them, form a C 6-11 aryl optionally substituted by 1-11 R 19 , C 3-11 cycloalkyl optionally substituted by 1-21 R 19 , 3-15 membered heterocycloalkyl optionally substituted by 1-28 R 19 or a 5-15 membered heteroaryl optionally substituted by 1-15 R 19 .

›Embodiment 111

The compound of any of Embodiments 1-108, wherein R 7 , R 8 , R 9 , and R 10 are independently chosen from H, C 1-6 alkyl optionally substituted by 1-6 R 19 , C 2-6 alkenyl optionally substituted by 1-6 R 19 , C 2-6 alkynyl optionally substituted by 1-6 R 19 , C 6-11 aryl optionally substituted by 1-6 R 19 , C 7-16 arylalkyl optionally substituted by 1-6 R 19 , C 3-11 cycloalkyl optionally substituted by 1-6 R 19 , C 4-17 cycloalkylalkyl optionally substituted by 1-6 R 19 , 3-15 membered heterocycloalkyl optionally substituted by 1-6 R 19 , 4-21 membered heterocycloalkylalkyl optionally substituted by 1-6 R 19 , 5-15 membered heteroaryl optionally substituted by 1-6 R 19 , 6-21 membered heteroarylalkyl optionally substituted by 1-6 R 19 , halogen, —CN, —C(═O)R 20 , —C(═O)OR 20 , —C(═O)NR 22 R 23 , —NC, —NO 2 , —NR 22 R 23 , —NR 24 OR 26 , —NR 24 C(═O)R 20 , —NR 24 C(═O)OR 21 , —NR 24 C(═O)NR 22 R 23 , —NR 24 S(═O) 2 R 21 , —NR 24 S(═O) 2 NR 22 R 23 , —OR 20 , —OCN, —OC(═O)R 20 , —OC(═O)NR 22 R 23 , —OC(═O)OR 20 , —OS(═O) 2 R 20 , —OS(═O) 2 OR 20 , —OS(═O) 2 NR 22 R 23 , —S(═O) n R 20 , and —S(═O) 2 NR 22 R 23 ; alternatively, either or both of R 7 and R 8 , and/or R 9 and R 10 , can, together with the atoms linking them, form a C 6-11 aryl optionally substituted by 1-6 R 19 , C 3-11 cycloalkyl optionally substituted by 1-6 R 19 , 3-15 membered heterocycloalkyl optionally substituted by 1-6 R 19 or a 5-15 membered heteroaryl optionally substituted by 1-6 R 19 .

›Embodiment 112

The compound of any of Embodiments 1-108, wherein R 7 , R 8 , R 9 , and R 10 are independently chosen from H, C 1-6 alkyl optionally substituted by 1-4 R 19 , C 2-6 alkenyl optionally substituted by 1-4 R 19 , C 2-6 alkynyl optionally substituted by 1-4 R 19 , C 6-10 aryl optionally substituted by 1-4 R 19 , C 7-11 arylalkyl optionally substituted by 1-4 R 19 , C 3-7 cycloalkyl optionally substituted by 1-4 R 19 , C 4-8 cycloalkylalkyl optionally substituted by 1-4 R 19 , 3-7 membered heterocycloalkyl optionally substituted by 1-4 R 19 , 4-8 membered heterocycloalkylalkyl optionally substituted by 1-4 R 19 , 5-6 membered heteroaryl optionally substituted by 1-4 R 19 , 6-21 membered heteroarylalkyl optionally substituted by 1-4 R 19 , halogen, —CN, —C(═O)R 20 , —C(═O)OR 20 , —C(═O)NR 22 R 23 , —NC, —NO 2 , —NR 22 R 23 , —NR 24 OR 26 , —NR 24 C(═O)R 20 , —NR 24 C(═O)OR 21 , —NR 24 C(═O)NR 22 R 23 , —NR 24 S(═O) 2 R 21 , —NR 24 S(═O) 2 NR 22 R 23 , —OR 20 , —OCN, —OC(═O)R 20 , —OC(═O)NR 22 R 23 , —OC(═O)OR 20 , —OS(═O) 2 R 20 , —OS(═O) 2 OR 20 , —OS(═O) 2 NR 22 R 23 , —S(═O) n R 20 , and —S(═O) 2 NR 22 R 23 ; alternatively, either or both of R 7 and R 8 , and/or R 9 and R 10 , can, together with the atoms linking them, form a C 6-10 aryl optionally substituted by 1-4 R 19 , C 3-7 cycloalkyl optionally substituted by 1-4 R 19 , 3-7 membered heterocycloalkyl optionally substituted by 1-4 R 19 or a 5-6 membered heteroaryl optionally substituted by 1-4 R 19 .

›Embodiment 113

The compound of any of Embodiments 1-108, wherein R 7 , R 8 , R 9 , and R 10 are independently chosen from H, C 1-6 alkyl optionally substituted by 1-3 R 19 , C 2-6 alkenyl optionally substituted by 1-3 R 19 , C 2-6 alkynyl optionally substituted by 1-3 R 19 , C 6-10 aryl optionally substituted by 1-3 R 19 , C 7-11 arylalkyl optionally substituted by 1-3 R 19 , C 3-7 cycloalkyl optionally substituted by 1-3 R 19 , C 4-8 cycloalkylalkyl optionally substituted by 1-3 R 19 , 3-7 membered heterocycloalkyl optionally substituted by 1-3 R 19 , 4-8 membered heterocycloalkylalkyl optionally substituted by 1-3 R 19 , 5-6 membered heteroaryl optionally substituted by 1-3 R 19 , 6-21 membered heteroarylalkyl optionally substituted by 1-3 R 19 , halogen, —CN, —C(═O)R 20 , —C(═O)OR 20 , —C(═O)NR 22 R 23 , —NC, —NO 2 , —NR 22 R 23 , —NR 24 OR 26 , —NR 24 C(═O)R 20 , —NR 24 C(═O)OR 21 , —NR 24 C(═O)NR 22 R 23 , —NR 24 S(═O) 2 R 21 , —NR 24 S(═O) 2 NR 22 R 23 , —OR 20 , —OCN, —OC(═O)R 20 , —OC(═O)NR 22 R 23 , —OC(═O)OR 20 , —OS(═O) 2 R 20 , —OS(═O) 2 OR 20 , —OS(═O) 2 NR 22 R 23 , —S(═O) n R 20 , and —S(═O) 2 NR 22 R 23 ; alternatively, either or both of R 7 and R 8 , and/or R 9 and R 10 , can, together with the atoms linking them, form a C 6-10 aryl optionally substituted by 1-3 R 19 , C 3-7 cycloalkyl optionally substituted by 1-3 R 19 , 3-7 membered heterocycloalkyl optionally substituted by 1-3 R 19 or a 5-6 membered heteroaryl optionally substituted by 1-3 R 19 .

›Embodiment 114

The compound of any of Embodiments 1-108, wherein R 7 , R 8 , R 9 , and R 10 are independently chosen from H, C 1-6 alkyl optionally substituted by 1-3 R 19 , C 2-6 alkenyl optionally substituted by 1-3 R 19 , C 2-6 alkynyl optionally substituted by 1-3 R 19 , C 6-10 aryl optionally substituted by 1-3 R 19 , C 7-11 arylalkyl optionally substituted by 1-3 R 19 , C 3-7 cycloalkyl optionally substituted by 1-3 R 19 , C 4-8 cycloalkylalkyl optionally substituted by 1-3 R 19 , 3-7 membered heterocycloalkyl optionally substituted by 1-3 R 19 , 4-8 membered heterocycloalkylalkyl optionally substituted by 1-3 R 19 , 5-6 membered heteroaryl optionally substituted by 1-3 R 19 , 6-21 membered heteroarylalkyl optionally substituted by 1-3 R 19 , halogen, —CN, —C(═O)R 20 , —C(═O)OR 20 , —C(═O)NR 22 R 23 , —NO 2 , —NR 22 R 23 , —NR 24 C(═O)R 20 , —NR 24 C(═O)OR 21 , —NR 24 C(═O)NR 22 R 23 , —NR 24 S(═O) 2 R 21 , —NR 24 S(═O) 2 NR 22 R 23 , —OR 20 , —OC(═O)R 20 , —OC(═O)NR 22 R 23 , —OS(═O) 2 R 20 , —OS(═O) 2 NR 22 R 23 , —S(═O) n R 20 , and —S(═O) 2 NR 22 R 23 ; alternatively, either or both of R 7 and R 8 , and/or R 9 and R 10 , can, together with the atoms linking them, form a C 6-10 aryl optionally substituted by 1-3 R 19 , C 3-7 cycloalkyl optionally substituted by 1-3 R 19 , 3-7 membered heterocycloalkyl optionally substituted by 1-3 R 19 or a 5-6 membered heteroaryl optionally substituted by 1-3 R 19 .

›Embodiment 115

The compound of any of Embodiments 1-108, wherein R 7 , R 8 , R 9 , and R 10 are independently chosen from H, C 1-6 alkyl optionally substituted by 1-3 R 19 , C 2-6 alkenyl optionally substituted by 1-3 R 19 , C 2-6 alkynyl optionally substituted by 1-3 R 19 , C 6-10 aryl optionally substituted by 1-3 R 19 , C 7-11 arylalkyl optionally substituted by 1-3 R 19 , C 3-7 cycloalkyl optionally substituted by 1-3 R 19 , C 4-8 cycloalkylalkyl optionally substituted by 1-3 R 19 , 3-7 membered heterocycloalkyl optionally substituted by 1-3 R 19 , 4-8 membered heterocycloalkylalkyl optionally substituted by 1-3 R 19 , 5-6 membered heteroaryl optionally substituted by 1-3 R 19 , 6-21 membered heteroarylalkyl optionally substituted by 1-3 R 19 , halogen, —CN, —C(═O)R 20 , —C(═O)OR 20 , —C(═O)NR 22 R 23 , —NO 2 , —NR 22 R 23 , —NR 24 C(═O)R 20 , —NR 24 S(═O) 2 R 21 , —OR 20 , —S(═O) n R 20 , and —S(═O) 2 NR 22 R 23 ; alternatively, either or both of R 7 and R 8 , and/or R 9 and R 10 , can, together with the atoms linking them, form a C 6-10 aryl optionally substituted by 1-3 R 19 , C 3-7 cycloalkyl optionally substituted by 1-3 R 19 , 3-7 membered heterocycloalkyl optionally substituted by 1-3 R 19 or a 5-6 membered heteroaryl optionally substituted by 1-3 R 19 .

›Embodiment 116

The compound of any of Embodiments 1-108, wherein R 7 , R 8 , R 9 , and R 10 are independently chosen from H, C 1-6 alkyl, C 2-6 alkenyl, C 2-6 alkynyl, C 6-10 aryl, C 7-11 arylalkyl, C 3-7 cycloalkyl, C 4-8 cycloalkylalkyl, 3-7 membered heterocycloalkyl, 4-8 membered heterocycloalkylalkyl, 5-6 membered heteroaryl, 6-21 membered heteroarylalkyl, halogen, —CN, —C(═O)R 20 , —C(═O)OR 20 , —C(═O)NR 22 R 23 , —NO 2 , —NR 22 R 23 , —NR 24 C(═O)R 20 , —NR 24 S(═O) 2 R 21 , —OR 20 , —S(═O) n R 20 , and —S(═O) 2 NR 22 R 23 ; alternatively, either or both of R 7 and R 8 , and/or R 9 and R 10 , can, together with the atoms linking them, form a C 6-10 aryl, C 3-7 cycloalkyl, 3-7 membered heterocycloalkyl or a 5-6 membered heteroaryl.

›Embodiment 117

The compound of any of Embodiments 1-108, wherein R 7 , R 8 , R 9 , and R 10 are independently chosen from H, C 1-6 alkyl optionally substituted by 1-3 R 19 , C 2-6 alkenyl optionally substituted by 1-3 R 19 , C 2-6 alkynyl optionally substituted by 1-3 R 19 , C 6-10 aryl optionally substituted by 1-3 R 19 , C 7-11 arylalkyl optionally substituted by 1-3 R 19 , C 3-7 cycloalkyl optionally substituted by 1-3 R 19 , C 4-8 cycloalkylalkyl optionally substituted by 1-3 R 19 , 3-7 membered heterocycloalkyl optionally substituted by 1-3 R 19 , 4-8 membered heterocycloalkylalkyl optionally substituted by 1-3 R 19 , 5-6 membered heteroaryl optionally substituted by 1-3 R 19 , 6-21 membered heteroarylalkyl optionally substituted by 1-3 R 19 , halogen, —CN, —C(═O)R 20 , —C(═O)NR 22 R 23 , —NO 2 , —NR 22 R 23 , —NR 24 S(═O) 2 R 21 , —OR 20 , —S(═O) n R 20 , and —S(═O) 2 NR 22 R 23 ; alternatively, either or both of R 7 and R 8 , and/or R 9 and R 10 , can, together with the atoms linking them, form a C 6-10 aryl optionally substituted by 1-3 R 19 , C 3-7 cycloalkyl optionally substituted by 1-3 R 19 , 3-7 membered heterocycloalkyl optionally substituted by 1-3 R 19 or a 5-6 membered heteroaryl optionally substituted by 1-3 R 19 .

›Embodiment 118

The compound of any of Embodiments 1-108, wherein R 7 , R 8 , R 9 , and R 10 are independently chosen from H, C 1-6 alkyl optionally substituted by 1-3 R 19 , C 2-6 alkynyl optionally substituted by 1-3 R 19 , C 6-10 aryl optionally substituted by 1-3 R 19 , C 3-7 cycloalkyl optionally substituted by 1-3 R 19 , 3-7 membered heterocycloalkyl optionally substituted by 1-3 R 19 , 5-6 membered heteroaryl optionally substituted by 1-3 R 19 , halogen, —CN, —C(═O)R 20 , —C(═O)NR 22 R 23 , —NO 2 , —NR 22 R 23 , —NR 24 S(═O) 2 R 21 , —OR 20 , —S(═O) n R 20 , and —S(═O) 2 NR 22 R 23 ; alternatively, either or both of R 7 and R 8 , and/or R 9 and R 10 , can, together with the atoms linking them, form a C 6-10 aryl optionally substituted by 1-3 R 19 , C 3-7 cycloalkyl optionally substituted by 1-3 R 19 , 3-7 membered heterocycloalkyl optionally substituted by 1-3 R 19 or a 5-6 membered heteroaryl optionally substituted by 1-3 R 19 .

›Embodiment 119

The compound of any of Embodiments 1-108, wherein R 7 , R 8 , R 9 , and R 10 are independently chosen from H, C 1-6 alkyl optionally substituted by 1-3 R 19 , C 2-6 alkynyl optionally substituted by 1-3 R 19 , C 6-10 aryl optionally substituted by 1-3 R 19 , C 3-7 cycloalkyl optionally substituted by 1-3 R 19 , 3-7 membered heterocycloalkyl optionally substituted by 1-3 R 19 , 5-6 membered heteroaryl optionally substituted by 1-3 R 19 , halogen, —CN, —C(═O)R 20 , —C(═O)NR 22 R 23 , —NO 2 , —NR 22 R 23 , —NR 24 S(═O) 2 R 21 , —OR 20 , —S(═O) n R 20 , and —S(═O) 2 NR 22 R 23 ; alternatively, either or both of R 7 and R 8 , and/or R 9 and R 10 , can, together with the atoms linking them, form a C 3-7 cycloalkyl optionally substituted by 1-3 R 19 , or a 3-7 membered heterocycloalkyl optionally substituted by 1-3 R 19 .

›Embodiment 120

The compound of any of Embodiments 1-108, wherein R 7 , R 8 , R 9 , and R 10 are independently chosen from H, C 1-6 alkyl, C 2-6 alkynyl, C 6-10 aryl, C 3-7 cycloalkyl, 3-7 membered heterocycloalkyl, 5-6 membered heteroaryl, halogen, —CN, —C(═O)R 20 , —C(═O)NR 22 R 23 , —NO 2 , —NR 22 R 23 , —NR 24 S(═O) 2 R 21 , —OR 20 , —S(═O) n R 20 , and —S(═O) 2 NR 22 R 23 ; alternatively, either or both of R 7 and R 8 , and/or R 9 and R 10 , can, together with the atoms linking them, form a C 3-7 cycloalkyl, or a 3-7 membered heterocycloalkyl.

›Embodiment 121

The compound of any of Embodiments 1-108, wherein R 7 , R 8 , R 9 , and R 10 are independently chosen from H, C 1-6 alkyl optionally substituted by 1-13 R 19 , C 2-6 alkenyl optionally substituted by 1-11 R 19 , C 2-6 alkynyl optionally substituted by 1-9 R 19 , C 6-11 aryl optionally substituted by 1-11 R 19 , C 7-16 arylalkyl optionally substituted by 1-19 R 19 , C 3-11 cycloalkyl optionally substituted by 1-21 R 19 , C 4-17 cycloalkylalkyl optionally substituted by 1-32 R 19 , 3-15 membered heterocycloalkyl optionally substituted by 1-28 R 19 , 4-21 membered heterocycloalkylalkyl optionally substituted by 1-40 R 19 , 5-15 membered heteroaryl optionally substituted by 1-15 R 19 , 6-21 membered heteroarylalkyl optionally substituted by 1-27 R 19 , halogen, —CN, —C(═O)R 20 , —C(═O)OR 20 , —C(═O)NR 22 R 23 , —NO 2 , —NR 22 R 23 , and —OR 20 ; alternatively, either or both of R 7 and R 8 , and/or R 9 and R 10 , can, together with the atoms linking them, form a C 6-11 aryl optionally substituted by 1-11 R 19 , C 3-11 cycloalkyl optionally substituted by 1-21 R 19 , 3-15 membered heterocycloalkyl optionally substituted by 1-28 R 19 or a 5-15 membered heteroaryl optionally substituted by 1-15 R 19 .

›Embodiment 122

The compound of any of Embodiments 1-108, wherein R 7 , R 8 , R 9 , and R 10 are independently chosen from H, C 1-6 alkyl optionally substituted by 1-13 R 19 , C 2-6 alkenyl optionally substituted by 1-11 R 19 , C 2-6 alkynyl optionally substituted by 1-9 R 19 , C 6-11 aryl optionally substituted by 1-11 R 19 , C 7-16 arylalkyl optionally substituted by 1-19 R 19 , C 3-11 cycloalkyl optionally substituted by 1-21 R 19 , C 4-17 cycloalkylalkyl optionally substituted by 1-32 R 19 , 3-15 membered heterocycloalkyl optionally substituted by 1-28 R 19 , 4-21 membered heterocycloalkylalkyl optionally substituted by 1-40 R 19 , 5-15 membered heteroaryl optionally substituted by 1-15 R 19 , 6-21 membered heteroarylalkyl optionally substituted by 1-27 R 19 , halogen, —CN, —C(═O)NR 22 R 23 , —NO 2 , —NR 22 R 23 , and —OR 20 ; alternatively, either or both of R 7 and R 8 , and/or R 9 and R 10 , can, together with the atoms linking them, form a C 6-11 aryl optionally substituted by 1-11 R 19 , C 3-11 cycloalkyl optionally substituted by 1-21 R 19 , 3-15 membered heterocycloalkyl optionally substituted by 1-28 R 19 or a 5-15 membered heteroaryl optionally substituted by 1-15 R 19 .

›Embodiment 123

The compound of any of Embodiments 1-108, wherein R 7 , R 8 , R 9 , and R 10 are independently chosen from H, C 1-6 alkyl optionally substituted by 1-13 R 19 , C 2-6 alkenyl optionally substituted by 1-11 R 19 , C 2-6 alkynyl optionally substituted by 1-9 R 19 , C 6-11 aryl optionally substituted by 1-11 R 19 , C 7-16 arylalkyl optionally substituted by 1-19 R 19 , C 3-11 cycloalkyl optionally substituted by 1-21 R 19 , 3-15 membered heterocycloalkyl optionally substituted by 1-28 R 19 , 5-15 membered heteroaryl optionally substituted by 1-15 R 19 , 6-21 membered heteroarylalkyl optionally substituted by 1-27 R 19 , halogen, —CN, —C(═O)R 20 , —C(═O)NR 22 R 23 , —NR 22 R 23 , —NR 24 C(═O)R 20 , and —OR 20 ; alternatively, either or both of R 7 and R 8 , and/or R 9 and R 10 , can, together with the atoms linking them, form a C 6-11 aryl optionally substituted by 1-11 R 19 , C 3-11 cycloalkyl optionally substituted by 1-21 R 19 , 3-15 membered heterocycloalkyl optionally substituted by 1-28 R 19 or a 5-15 membered heteroaryl optionally substituted by 1-15 R 19 .

›Embodiment 124

The compound of any of Embodiments 1-108, wherein R 7 , R 9 , and R 10 are independently chosen from H, C 1-6 alkyl optionally substituted by 1-13 R 19 , C 2-6 alkenyl optionally substituted by 1-11 R 19 , C 2-6 alkynyl optionally substituted by 1-9 R 19 , C 6-11 aryl optionally substituted by 1-11 R 19 , C 7-16 arylalkyl optionally substituted by 1-19 R 19 , C 3-11 cycloalkyl optionally substituted by 1-21 R 19 , 3-15 membered heterocycloalkyl optionally substituted by 1-28 R 19 , 5-15 membered heteroaryl optionally substituted by 1-15 R 19 , 6-21 membered heteroarylalkyl optionally substituted by 1-27 R 19 , halogen, —CN, —C(═O)R 20 , —C(═O)NR 22 R 23 , —NR 22 R 23 , —NR 24 C(═O)R 20 , and —OR 20 ; R 8 is chosen from H, C 1-6 alkyl optionally substituted by 1-13 R 19 , C 2-6 alkenyl optionally substituted by 1-11 R 19 , C 2-6 alkynyl optionally substituted by 1-9 R 19 , C 7-16 arylalkyl optionally substituted by 1-19 R 19 , C 3-11 cycloalkyl optionally substituted by 1-21 R 19 , 3-15 membered heterocycloalkyl optionally substituted by 1-28 R 19 , 6-21 membered heteroarylalkyl optionally substituted by 1-27 R 19 , halogen, —CN, —C(═O)R 20 , —C(═O)NR 22 R 23 , —NR 22 R 23 , —NR 24 C(═O)R 20 , and —OR 20 ; alternatively, either or both of R 7 and R 8 , and/or R 9 and R 10 , can, together with the atoms linking them, form a C 6-11 aryl optionally substituted by 1-11 R 19 , C 3-11 cycloalkyl optionally substituted by 1-21 R 19 , 3-15 membered heterocycloalkyl optionally substituted by 1-28 R 19 or a 5-15 membered heteroaryl optionally substituted by 1-15 R 19 .

›Embodiment 125

The compound of any of Embodiments 1-108, wherein R 7 and R 10 are independently chosen from H, C 1-6 alkyl optionally substituted by 1-13 R 19 , C 2-6 alkenyl optionally substituted by 1-11 R 19 , C 2-6 alkynyl optionally substituted by 1-9 R 19 , C 6-11 aryl optionally substituted by 1-11 R 19 , C 7-16 arylalkyl optionally substituted by 1-19 R 19 , C 3-11 cycloalkyl optionally substituted by 1-21 R 19 , 3-15 membered heterocycloalkyl optionally substituted by 1-28 R 19 , 5-15 membered heteroaryl optionally substituted by 1-15 R 19 , 6-21 membered heteroarylalkyl optionally substituted by 1-27 R 19 , halogen, —CN, —C(═O)R 20 , —C(═O)NR 22 R 23 , —NR 22 R 23 , —NR 24 C(═O)R 20 , and —OR 20 ; R 8 and R 9 are independently chosen from C 1-6 alkyl optionally substituted by 1-13 R 19 , C 2-6 alkenyl optionally substituted by 1-11 R 19 , C 2-6 alkynyl optionally substituted by 1-9 R 19 , C 6-11 aryl optionally substituted by 1-11 R 19 , C 7-16 arylalkyl optionally substituted by 1-19 R 19 , C 3-11 cycloalkyl optionally substituted by 1-21 R 19 , 3-15 membered heterocycloalkyl optionally substituted by 1-28 R 19 , 5-15 membered heteroaryl optionally substituted by 1-15 R 19 , 6-21 membered heteroarylalkyl optionally substituted by 1-27 R 19 , halogen, —CN, —C(═O)R 20 , —C(═O)NR 22 R 23 , —NR 22 R 23 , —NR 24 C(═O)R 20 , and —OR 20 ; alternatively, either or both of R 7 and R 8 , and/or R 9 and R 10 , can, together with the atoms linking them, form a C 6-11 aryl optionally substituted by 1-11 R 19 , C 3-11 cycloalkyl optionally substituted by 1-21 R 19 , 3-15 membered heterocycloalkyl optionally substituted by 1-28 R 19 or a 5-15 membered heteroaryl optionally substituted by 1-15 R 19 .

›Embodiment 126

The compound of any of Embodiments 1-108, wherein R 7 and R 10 are independently chosen from H, C 1-6 alkyl optionally substituted by 1-13 R 19 , C 2-6 alkenyl optionally substituted by 1-11 R 19 , C 2-6 alkynyl optionally substituted by 1-9 R 19 , C 6-11 aryl optionally substituted by 1-11 R 19 , C 7-16 arylalkyl optionally substituted by 1-19 R 19 , C 3-11 cycloalkyl optionally substituted by 1-21 R 19 , 3-15 membered heterocycloalkyl optionally substituted by 1-28 R 19 , 5-15 membered heteroaryl optionally substituted by 1-15 R 19 , 6-21 membered heteroarylalkyl optionally substituted by 1-27 R 19 , halogen, —CN, —C(═O)R 20 , —C(═O)NR 22 R 23 , —NR 22 R 23 , —NR 24 C(═O)R 20 , and —OR 20 ; R 8 is chosen from C 1-6 alkyl optionally substituted by 1-13 R 19 , C 2-6 alkenyl optionally substituted by 1-11 R 19 , C 2-6 alkynyl optionally substituted by 1-9 R 19 , C 7-16 arylalkyl optionally substituted by 1-19 R 19 , C 3-11 cycloalkyl optionally substituted by 1-21 R 19 , 3-15 membered heterocycloalkyl optionally substituted by 1-28 R 19 , 6-21 membered heteroarylalkyl optionally substituted by 1-27 R 19 , halogen, —CN, —C(═O)R 20 , —C(═O)NR 22 R 23 , —NR 22 R 23 , —NR 24 C(═O)R 20 , and —OR 20 ; R 9 is chosen from C 1-6 alkyl optionally substituted by 1-13 R 19 , C 2-6 alkenyl optionally substituted by 1-11 R 19 , C 2-6 alkynyl optionally substituted by 1-9 R 19 , C 6-11 aryl optionally substituted by 1-11 R 19 , C 7-16 arylalkyl optionally substituted by 1-19 R 19 , C 3-11 cycloalkyl optionally substituted by 1-21 R 19 , 3-15 membered heterocycloalkyl optionally substituted by 1-28 R 19 , 5-15 membered heteroaryl optionally substituted by 1-15 R 19 , 6-21 membered heteroarylalkyl optionally substituted by 1-27 R 19 , halogen, —CN, —C(═O)R 20 , —C(═O)NR 22 R 23 , —NR 22 R 23 , —NR 24 C(═O)R 20 , and —OR 20 ; alternatively, either or both of R 7 and R 8 , and/or R 9 and R 10 , can, together with the atoms linking them, form a C 6-11 aryl optionally substituted by 1-11 R 19 , C 3-11 cycloalkyl optionally substituted by 1-21 R 19 , 3-15 membered heterocycloalkyl optionally substituted by 1-28 R 19 or a 5-15 membered heteroaryl optionally substituted by 1-15 R 19 .

›Embodiment 127

The compound of any of Embodiments 1-108, wherein R 8 and R 9 are independently chosen from H, C 1-6 alkyl optionally substituted by 1-13 R 19 , C 2-6 alkenyl optionally substituted by 1-11 R 19 , C 2-6 alkynyl optionally substituted by 1-9 R 19 , C 6-11 aryl optionally substituted by 1-11 R 19 , C 7-16 arylalkyl optionally substituted by 1-19 R 19 , C 3-11 cycloalkyl optionally substituted by 1-21 R 19 , 3-15 membered heterocycloalkyl optionally substituted by 1-28 R 19 , 5-15 membered heteroaryl optionally substituted by 1-15 R 19 , 6-21 membered heteroarylalkyl optionally substituted by 1-27 R 19 , halogen, —CN, —C(═O)R 20 , —C(═O)NR 22 R 23 , —NR 22 R 23 , —NR 24 C(═O)R 20 , and —OR 20 ; R 7 and R 10 are independently chosen from C 1-6 alkyl optionally substituted by 1-13 R 19 , C 2-6 alkenyl optionally substituted by 1-11 R 19 , C 2-6 alkynyl optionally substituted by 1-9 R 19 , C 6-11 aryl optionally substituted by 1-11 R 19 , C 7-16 arylalkyl optionally substituted by 1-19 R 19 , C 3-11 cycloalkyl optionally substituted by 1-21 R 19 , 3-15 membered heterocycloalkyl optionally substituted by 1-28 R 19 , 5-15 membered heteroaryl optionally substituted by 1-15 R 19 , 6-21 membered heteroarylalkyl optionally substituted by 1-27 R 19 , halogen, —CN, —C(═O)R 20 , —C(═O)NR 22 R 23 , —NR 22 R 23 , —NR 24 C(═O)R 20 , and —OR 20 ; alternatively, either or both of R 7 and R 8 , and/or R 9 and R 10 , can, together with the atoms linking them, form a C 6-11 aryl optionally substituted by 1-11 R 19 , C 3-11 cycloalkyl optionally substituted by 1-21 R 19 , 3-15 membered heterocycloalkyl optionally substituted by 1-28 R 19 or a 5-15 membered heteroaryl optionally substituted by 1-15 R 19 .

›Embodiment 128

The compound of any of Embodiments 1-108, wherein R 8 is chosen from H, C 1-6 alkyl optionally substituted by 1-13 R 19 , C 2-6 alkenyl optionally substituted by 1-11 R 19 , C 2-6 alkynyl optionally substituted by 1-9 R 19 , C 7-16 arylalkyl optionally substituted by 1-19 R 19 , C 3-11 cycloalkyl optionally substituted by 1-21 R 19 , 3-15 membered heterocycloalkyl optionally substituted by 1-28 R 19 , 6-21 membered heteroarylalkyl optionally substituted by 1-27 R 19 , halogen, —CN, —C(═O)R 20 , —C(═O)NR 22 R 23 , —NR 22 R 23 , —NR 24 C(═O)R 20 , and —OR 20 ; R 9 is chosen from H, C 1-6 alkyl optionally substituted by 1-13 R 19 , C 2-6 alkenyl optionally substituted by 1-11 R 19 , C 2-6 alkynyl optionally substituted by 1-9 R 19 , C 6-11 aryl optionally substituted by 1-11 R 19 , C 7-16 arylalkyl optionally substituted by 1-19 R 19 , C 3-11 cycloalkyl optionally substituted by 1-21 R 19 , 3-15 membered heterocycloalkyl optionally substituted by 1-28 R 19 , 5-15 membered heteroaryl optionally substituted by 1-15 R 19 , 6-21 membered heteroarylalkyl optionally substituted by 1-27 R 19 , halogen, —CN, —C(═O)R 20 , —C(═O)NR 22 R 23 , —NR 22 R 23 , —NR 24 C(═O)R 20 , and —OR 20 ; R 7 and R 10 are independently chosen from C 1-6 alkyl optionally substituted by 1-13 R 19 , C 2-6 alkenyl optionally substituted by 1-11 R 19 , C 2-6 alkynyl optionally substituted by 1-9 R 19 , C 6-11 aryl optionally substituted by 1-11 R 19 , C 7-16 arylalkyl optionally substituted by 1-19 R 19 , C 3-11 cycloalkyl optionally substituted by 1-21 R 19 , 3-15 membered heterocycloalkyl optionally substituted by 1-28 R 19 , 5-15 membered heteroaryl optionally substituted by 1-15 R 19 , 6-21 membered heteroarylalkyl optionally substituted by 1-27 R 19 , halogen, —CN, —C(═O)R 20 , —C(═O)NR 22 R 23 , —NR 22 R 23 , —NR 24 C(═O)R 20 , and —OR 20 ; alternatively, either or both of R 7 and R 8 , and/or R 9 and R 10 , can, together with the atoms linking them, form a C 6-11 aryl optionally substituted by 1-11 R 19 , C 3-11 cycloalkyl optionally substituted by 1-21 R 19 , 3-15 membered heterocycloalkyl optionally substituted by 1-28 R 19 or a 5-15 membered heteroaryl optionally substituted by 1-15 R 19 .

›Embodiment 129

The compound of any of Embodiments 1-108, wherein R 7 , R 8 , R 9 , and R 10 are independently chosen from H, C 1-6 alkyl optionally substituted by 1-3 R 19 , C 2-6 alkenyl optionally substituted by 1-3 R 19 , C 2-6 alkynyl optionally substituted by 1-3 R 19 , C 6-11 aryl optionally substituted by 1-3 R 19 , C 7-16 arylalkyl optionally substituted by 1-3 R 19 , C 3-11 cycloalkyl optionally substituted by 1-3 R 19 , 3-15 membered heterocycloalkyl optionally substituted by 1-3 R 19 , 5-15 membered heteroaryl optionally substituted by 1-3 R 19 , 6-21 membered heteroarylalkyl optionally substituted by 1-3 R 19 , halogen, —CN, —C(═O)R 20 , —C(═O)NR 22 R 23 , —NR 22 R 23 , —NR 24 C(═O)R 20 , and —OR 20 ; alternatively, either or both of R 7 and R 8 , and/or R 9 and R 10 , can, together with the atoms linking them, form a C 6-11 aryl optionally substituted by 1-3 R 19 , C 3-11 cycloalkyl optionally substituted by 1-3 R 19 , 3-15 membered heterocycloalkyl optionally substituted by 1-3 R 19 or a 5-15 membered heteroaryl optionally substituted by 1-3 R 19 .

›Embodiment 130

The compound of any of Embodiments 1-108, wherein R 7 , R 9 , and R 10 are independently chosen from H, C 1-6 alkyl optionally substituted by 1-3 R 19 , C 2-6 alkenyl optionally substituted by 1-3 R 19 , C 2-6 alkynyl optionally substituted by 1-3 R 19 , C 6-11 aryl optionally substituted by 1-3 R 19 , C 7-16 arylalkyl optionally substituted by 1-3 R 19 , C 3-11 cycloalkyl optionally substituted by 1-3 R 19 , 3-15 membered heterocycloalkyl optionally substituted by 1-3 R 19 , 5-15 membered heteroaryl optionally substituted by 1-3 R 19 , 6-21 membered heteroarylalkyl optionally substituted by 1-3 R 19 , halogen, —CN, —C(═O)R 20 , —C(═O)NR 22 R 23 , —NR 22 R 23 , —NR 24 C(═O)R 20 , and —OR 20 ; R 8 is chosen from H, C 1-6 alkyl optionally substituted by 1-3 R 19 , C 2-6 alkenyl optionally substituted by 1-3 R 19 , C 2-6 alkynyl optionally substituted by 1-3 R 19 , C 7-16 arylalkyl optionally substituted by 1-3 R 19 , C 3-11 cycloalkyl optionally substituted by 1-3 R 19 , 3-15 membered heterocycloalkyl optionally substituted by 1-3 R 19 , 6-21 membered heteroarylalkyl optionally substituted by 1-3 R 19 , halogen, —CN, —C(═O)R 20 , —C(═O)NR 22 R 23 , —NR 22 R 23 , —NR 24 C(═O)R 20 , and —OR 20 ; alternatively, either or both of R 7 and R 8 , and/or R 9 and R 10 , can, together with the atoms linking them, form a C 6-11 aryl optionally substituted by 1-3 R 19 , C 3-11 cycloalkyl optionally substituted by 1-3 R 19 , 3-15 membered heterocycloalkyl optionally substituted by 1-3 R 19 or a 5-15 membered heteroaryl optionally substituted by 1-3 R 19 .

›Embodiment 131

The compound of any of Embodiments 1-108, wherein R 7 and R 10 are independently chosen from H, C 1-6 alkyl optionally substituted by 1-3 R 19 , C 2-6 alkenyl optionally substituted by 1-3 R 19 , C 2-6 alkynyl optionally substituted by 1-3 R 19 , C 6-11 aryl optionally substituted by 1-3 R 19 , C 7-16 arylalkyl optionally substituted by 1-3 R 19 , C 3-11 cycloalkyl optionally substituted by 1-3 R 19 , 3-15 membered heterocycloalkyl optionally substituted by 1-3 R 19 , 5-15 membered heteroaryl optionally substituted by 1-3 R 19 , 6-21 membered heteroarylalkyl optionally substituted by 1-3 R 19 , halogen, —CN, —C(═O)R 20 , —C(═O)NR 22 R 23 , —NR 22 R 23 , —NR 24 C(═O)R 20 , and —OR 20 ; R 8 and R 9 are independently chosen from C 1-6 alkyl optionally substituted by 1-3 R 19 , C 2-6 alkenyl optionally substituted by 1-3 R 19 , C 2-6 alkynyl optionally substituted by 1-3 R 19 , C 6-11 aryl optionally substituted by 1-3 R 19 , C 7-16 arylalkyl optionally substituted by 1-3 R 19 , C 3-11 cycloalkyl optionally substituted by 1-3 R 19 , 3-15 membered heterocycloalkyl optionally substituted by 1-3 R 19 , 5-15 membered heteroaryl optionally substituted by 1-3 R 19 , 6-21 membered heteroarylalkyl optionally substituted by 1-3 R 19 , halogen, —CN, —C(═O)R 20 , —C(═O)NR 22 R 23 , —NR 22 R 23 , —NR 24 C(═O)R 20 , and —OR 20 ; alternatively, either or both of R 7 and R 8 , and/or R 9 and R 10 , can, together with the atoms linking them, form a C 6-11 aryl optionally substituted by 1-3 R 19 , C 3-11 cycloalkyl optionally substituted by 1-3 R 19 , 3-15 membered heterocycloalkyl optionally substituted by 1-3 R 19 or a 5-15 membered heteroaryl optionally substituted by 1-3 R 19 .

›Embodiment 132

The compound of any of Embodiments 1-108, wherein R 7 and R 10 are independently chosen from H, C 1-6 alkyl optionally substituted by 1-3 R 19 , C 2-6 alkenyl optionally substituted by 1-3 R 19 , C 2-6 alkynyl optionally substituted by 1-3 R 19 , C 6-11 aryl optionally substituted by 1-3 R 19 , C 7-16 arylalkyl optionally substituted by 1-3 R 19 , C 3-11 cycloalkyl optionally substituted by 1-3 R 19 , 3-15 membered heterocycloalkyl optionally substituted by 1-3 R 19 , 5-15 membered heteroaryl optionally substituted by 1-3 R 19 , 6-21 membered heteroarylalkyl optionally substituted by 1-3 R 19 , halogen, —CN, —C(═O)R 20 , —C(═O)NR 22 R 23 , —NR 22 R 23 , —NR 24 C(═O)R 20 , and —OR 20 ; R 8 is chosen from C 1-6 alkyl optionally substituted by 1-3 R 19 , C 2-6 alkenyl optionally substituted by 1-3 R 19 , C 2-6 alkynyl optionally substituted by 1-3 R 19 , C 7-16 arylalkyl optionally substituted by 1-3 R 19 , C 3-11 cycloalkyl optionally substituted by 1-3 R 19 , 3-15 membered heterocycloalkyl optionally substituted by 1-3 R 19 , 6-21 membered heteroarylalkyl optionally substituted by 1-3 R 19 , halogen, —CN, —C(═O)R 20 , —C(═O)NR 22 R 23 , —NR 22 R 23 , —NR 24 C(═O)R 20 , and —OR 20 ; R 9 is chosen from C 1-6 alkyl optionally substituted by 1-3 R 19 , C 2-6 alkenyl optionally substituted by 1-3 R 19 , C 2-6 alkynyl optionally substituted by 1-3 R 19 , C 6-11 aryl optionally substituted by 1-3 R 19 , C 7-16 arylalkyl optionally substituted by 1-3 R 19 , C 3-11 cycloalkyl optionally substituted by 1-3 R 19 , 3-15 membered heterocycloalkyl optionally substituted by 1-3 R 19 , 5-15 membered heteroaryl optionally substituted by 1-3 R 19 , 6-21 membered heteroarylalkyl optionally substituted by 1-3 R 19 , halogen, —CN, —C(═O)R 20 , —C(═O)NR 22 R 23 , —NR 22 R 23 , —NR 24 C(═O)R 20 , and —OR 20 ; alternatively, either or both of R 7 and R 8 , and/or R 9 and R 10 , can, together with the atoms linking them, form a C 6-11 aryl optionally substituted by 1-3 R 19 , C 3-11 cycloalkyl optionally substituted by 1-3 R 19 , 3-15 membered heterocycloalkyl optionally substituted by 1-3 R 19 or a 5-15 membered heteroaryl optionally substituted by 1-3 R 19 .

›Embodiment 133

The compound of any of Embodiments 1-108, wherein R 8 and R 9 are independently chosen from H, C 1-6 alkyl optionally substituted by 1-3 R 19 , C 2-6 alkenyl optionally substituted by 1-3 R 19 , C 2-6 alkynyl optionally substituted by 1-3 R 19 , C 6-11 aryl optionally substituted by 1-3 R 19 , C 7-16 arylalkyl optionally substituted by 1-3 R 19 , C 3-11 cycloalkyl optionally substituted by 1-3 R 19 , 3-15 membered heterocycloalkyl optionally substituted by 1-3 R 19 , 5-15 membered heteroaryl optionally substituted by 1-3 R 19 , 6-21 membered heteroarylalkyl optionally substituted by 1-3 R 19 , halogen, —CN, —C(═O)R 20 , —C(═O)NR 22 R 23 , —NR 22 R 23 , —NR 24 C(═O)R 20 , and —OR 20 ; R 7 and R 10 are independently chosen from C 1-6 alkyl optionally substituted by 1-3 R 19 , C 2-6 alkenyl optionally substituted by 1-3 R 19 , C 2-6 alkynyl optionally substituted by 1-3 R 19 , C 6-11 aryl optionally substituted by 1-3 R 19 , C 7-16 arylalkyl optionally substituted by 1-3 R 19 , C 3-11 cycloalkyl optionally substituted by 1-3 R 19 , 3-15 membered heterocycloalkyl optionally substituted by 1-3 R 19 , 5-15 membered heteroaryl optionally substituted by 1-3 R 19 , 6-21 membered heteroarylalkyl optionally substituted by 1-3 R 19 , halogen, —CN, —C(═O)R 20 , —C(═O)NR 22 R 23 , —NR 22 R 23 , —NR 24 C(═O)R 20 , and —OR 20 ; alternatively, either or both of R 7 and R 8 , and/or R 9 and R 10 , can, together with the atoms linking them, form a C 6-11 aryl optionally substituted by 1-3 R 19 , C 3-11 cycloalkyl optionally substituted by 1-3 R 19 , 3-15 membered heterocycloalkyl optionally substituted by 1-3 R 19 or a 5-15 membered heteroaryl optionally substituted by 1-3 R 19 .

›Embodiment 134

The compound of any of Embodiments 1-108, wherein R 8 is chosen from H, C 1-6 alkyl optionally substituted by 1-3 R 19 , C 2-6 alkenyl optionally substituted by 1-3 R 19 , C 2-6 alkynyl optionally substituted by 1-3 R 19 , C 7-16 arylalkyl optionally substituted by 1-3 R 19 , C 3-11 cycloalkyl optionally substituted by 1-3 R 19 , 3-15 membered heterocycloalkyl optionally substituted by 1-3 R 19 , 6-21 membered heteroarylalkyl optionally substituted by 1-3 R 19 , halogen, —CN, —C(═O)R 20 , —C(═O)NR 22 R 23 , —NR 22 R 23 , —NR 24 C(═O)R 20 , and —OR 20 ; R 9 is chosen from H, C 1-6 alkyl optionally substituted by 1-3 R 19 , C 2-6 alkenyl optionally substituted by 1-3 R 19 , C 2-6 alkynyl optionally substituted by 1-3 R 19 , C 6-11 aryl optionally substituted by 1-3 R 19 , C 7-16 arylalkyl optionally substituted by 1-3 R 19 , C 3-11 cycloalkyl optionally substituted by 1-3 R 19 , 3-15 membered heterocycloalkyl optionally substituted by 1-3 R 19 , 5-15 membered heteroaryl optionally substituted by 1-3 R 19 , 6-21 membered heteroarylalkyl optionally substituted by 1-3 R 19 , halogen, —CN, —C(═O)R 20 , —C(═O)NR 22 R 23 , —NR 22 R 23 , —NR 24 C(═O)R 20 , and —OR 20 ; R 7 and R 10 are independently chosen from C 1-6 alkyl optionally substituted by 1-3 R 19 , C 2-6 alkenyl optionally substituted by 1-3 R 19 , C 2-6 alkynyl optionally substituted by 1-3 R 19 , C 6-11 aryl optionally substituted by 1-3 R 19 , C 7-16 arylalkyl optionally substituted by 1-3 R 19 , C 3-11 cycloalkyl optionally substituted by 1-3 R 19 , 3-15 membered heterocycloalkyl optionally substituted by 1-3 R 19 , 5-15 membered heteroaryl optionally substituted by 1-3 R 19 , 6-21 membered heteroarylalkyl optionally substituted by 1-3 R 19 , halogen, —CN, —C(═O)R 20 , —C(═O)NR 22 R 23 , —NR 22 R 23 , —NR 24 C(═O)R 20 , and —OR 20 ; alternatively, either or both of R 7 and R 8 , and/or R 9 and R 10 , can, together with the atoms linking them, form a C 6-11 aryl optionally substituted by 1-3 R 19 , C 3-11 cycloalkyl optionally substituted by 1-3 R 19 , 3-15 membered heterocycloalkyl optionally substituted by 1-3 R 19 or a 5-15 membered heteroaryl optionally substituted by 1-3 R 19 .

›Embodiment 135

The compound of any of Embodiments 1-108, wherein R 7 , R 8 , R 9 , and R 10 are independently chosen from H, C 1-6 alkyl optionally substituted by 1-3 R 19 , C 2-6 alkenyl optionally substituted by 1-3 R 19 , C 2-6 alkynyl optionally substituted by 1-3 R 19 , C 6-10 aryl optionally substituted by 1-3 R 19 , C 7-11 arylalkyl optionally substituted by 1-3 R 19 , C 3-10 cycloalkyl optionally substituted by 1-3 R 19 , 3-10 membered heterocycloalkyl optionally substituted by 1-3 R 19 , 5-10 membered heteroaryl optionally substituted by 1-3 R 19 , 6-11 membered heteroarylalkyl optionally substituted by 1-3 R 19 , halogen, —CN, —C(═O)R 20 , —C(═O)NR 22 R 23 , —NR 22 R 23 , —NR 24 C(═O)R 20 , and —OR 20 ; alternatively, either or both of R 7 and R 8 , and/or R 9 and R 10 , can, together with the atoms linking them, form a C 6-10 aryl optionally substituted by 1-3 R 19 , C 3-10 cycloalkyl optionally substituted by 1-3 R 19 , 3-10 membered heterocycloalkyl optionally substituted by 1-3 R 19 or a 5-10 membered heteroaryl optionally substituted by 1-3 R 19 .

›Embodiment 136

The compound of any of Embodiments 1-108, wherein R 7 , R 9 , and R 10 are independently chosen from H, C 1-6 alkyl optionally substituted by 1-3 R 19 , C 2-6 alkenyl optionally substituted by 1-3 R 19 , C 2-6 alkynyl optionally substituted by 1-3 R 19 , C 6-10 aryl optionally substituted by 1-3 R 19 , C 7-11 arylalkyl optionally substituted by 1-3 R 19 , C 3-10 cycloalkyl optionally substituted by 1-3 R 19 , 3-10 membered heterocycloalkyl optionally substituted by 1-3 R 19 , 5-10 membered heteroaryl optionally substituted by 1-3 R 19 , 6-11 membered heteroarylalkyl optionally substituted by 1-3 R 19 , halogen, —CN, —C(═O)R 20 , —C(═O)NR 22 R 23 , —NR 22 R 23 , —NR 24 C(═O)R 20 , and —OR 20 ; R 8 is chosen from H, C 1-6 alkyl optionally substituted by 1-3 R 19 , C 2-6 alkenyl optionally substituted by 1-3 R 19 , C 2-6 alkynyl optionally substituted by 1-3 R 19 , C 7-11 arylalkyl optionally substituted by 1-3 R 19 , C 3-10 cycloalkyl optionally substituted by 1-3 R 19 , 3-10 membered heterocycloalkyl optionally substituted by 1-3 R 19 , 6-11 membered heteroarylalkyl optionally substituted by 1-3 R 19 , halogen, —CN, —C(═O)R 20 , —C(═O)NR 22 R 23 , —NR 22 R 23 , —NR 24 C(═O)R 20 , and —OR 20 ; alternatively, either or both of R 7 and R 8 , and/or R 9 and R 10 , can, together with the atoms linking them, form a C 6-10 aryl optionally substituted by 1-3 R 19 , C 3-10 cycloalkyl optionally substituted by 1-3 R 19 , 3-10 membered heterocycloalkyl optionally substituted by 1-3 R 19 or a 5-10 membered heteroaryl optionally substituted by 1-3 R 19 .

›Embodiment 137

The compound of any of Embodiments 1-108, wherein R 7 , R 8 , R 9 , and R 10 are independently chosen from H, C 1-6 alkyl optionally substituted by 1-3 R 19 , C 2-6 alkenyl optionally substituted by 1-3 R 19 , C 2-6 alkynyl optionally substituted by 1-3 R 19 , C 6-10 aryl optionally substituted by 1-3 R 19 , C 3-10 cycloalkyl optionally substituted by 1-3 R 19 , 3-10 membered heterocycloalkyl optionally substituted by 1-3 R 19 , 5-10 membered heteroaryl optionally substituted by 1-3 R 19 , halogen, —CN, —C(═O)R 20 , —C(═O)NR 22 R 23 , —NR 22 R 23 , —NR 24 C(═O)R 20 , and —OR 20 ; alternatively, either or both of R 7 and R 8 , and/or R 9 and R 10 , can, together with the atoms linking them, form a C 6-10 aryl optionally substituted by 1-3 R 19 , C 3-10 cycloalkyl optionally substituted by 1-3 R 19 , 3-10 membered heterocycloalkyl optionally substituted by 1-3 R 19 or a 5-10 membered heteroaryl optionally substituted by 1-3 R 19 .

›Embodiment 138

The compound of any of Embodiments 1-108, wherein R 7 , R 9 , and R 10 are independently chosen from H, C 1-6 alkyl optionally substituted by 1-3 R 19 , C 2-6 alkenyl optionally substituted by 1-3 R 19 , C 2-6 alkynyl optionally substituted by 1-3 R 19 , C 6-10 aryl optionally substituted by 1-3 R 19 , C 3-10 cycloalkyl optionally substituted by 1-3 R 19 , 3-10 membered heterocycloalkyl optionally substituted by 1-3 R 19 , 5-10 membered heteroaryl optionally substituted by 1-3 R 19 , halogen, —CN, —C(═O)R 20 , —C(═O)NR 22 R 23 , —NR 22 R 23 , —NR 24 C(═O)R 20 , and —OR 20 ; R 8 is chosen from H, C 1-6 alkyl optionally substituted by 1-3 R 19 , C 2-6 alkenyl optionally substituted by 1-3 R 19 , C 2-6 alkynyl optionally substituted by 1-3 R 19 , C 3-10 cycloalkyl optionally substituted by 1-3 R 19 , 3-10 membered heterocycloalkyl optionally substituted by 1-3 R 19 , halogen, —CN, —C(═O)R 20 , —C(═O)NR 22 R 23 , —NR 22 R 23 , —NR 24 C(═O)R 20 , and —OR 20 ; alternatively, either or both of R 7 and R 8 , and/or R 9 and R 10 , can, together with the atoms linking them, form a C 6-10 aryl optionally substituted by 1-3 R 19 , C 3-10 cycloalkyl optionally substituted by 1-3 R 19 , 3-10 membered heterocycloalkyl optionally substituted by 1-3 R 19 or a 5-10 membered heteroaryl optionally substituted by 1-3 R 19 .

›Embodiment 139

The compound of any of Embodiments 1-108, wherein R 7 and R 10 are independently chosen from H, C 1-6 alkyl optionally substituted by 1-3 R 19 , C 2-6 alkenyl optionally substituted by 1-3 R 19 , C 2-6 alkynyl optionally substituted by 1-3 R 19 , C 6-10 aryl optionally substituted by 1-3 R 19 , C 3-10 cycloalkyl optionally substituted by 1-3 R 19 , 3-10 membered heterocycloalkyl optionally substituted by 1-3 R 19 , 5-10 membered heteroaryl optionally substituted by 1-3 R 19 , halogen, —CN, —C(═O)R 20 , —C(═O)NR 22 R 23 , —NR 22 R 23 , —NR 24 C(═O)R 20 , and —OR 20 ; R 8 and R 9 are independently chosen from C 1-6 alkyl optionally substituted by 1-3 R 19 , C 2-6 alkenyl optionally substituted by 1-3 R 19 , C 2-6 alkynyl optionally substituted by 1-3 R 19 , C 6-10 aryl optionally substituted by 1-3 R 19 , C 3-10 cycloalkyl optionally substituted by 1-3 R 19 , 3-10 membered heterocycloalkyl optionally substituted by 1-3 R 19 , 5-10 membered heteroaryl optionally substituted by 1-3 R 19 , halogen, —CN, —C(═O)R 20 , —C(═O)NR 22 R 23 , —NR 22 R 23 , —NR 24 C(═O)R 20 , and —OR 20 ; alternatively, either or both of R 7 and R 8 , and/or R 9 and R 10 , can, together with the atoms linking them, form a C 6-10 aryl optionally substituted by 1-3 R 19 , C 3-10 cycloalkyl optionally substituted by 1-3 R 19 , 3-10 membered heterocycloalkyl optionally substituted by 1-3 R 19 or a 5-10 membered heteroaryl optionally substituted by 1-3 R 19 .

›Embodiment 140

The compound of any of Embodiments 1-108, wherein R 7 and R 10 are independently chosen from H, C 1-6 alkyl optionally substituted by 1-3 R 19 , C 2-6 alkenyl optionally substituted by 1-3 R 19 , C 2-6 alkynyl optionally substituted by 1-3 R 19 , C 6-10 aryl optionally substituted by 1-3 R 19 , C 3-10 cycloalkyl optionally substituted by 1-3 R 19 , 3-10 membered heterocycloalkyl optionally substituted by 1-3 R 19 , 5-10 membered heteroaryl optionally substituted by 1-3 R 19 , halogen, —CN, —C(═O)R 20 , —C(═O)NR 22 R 23 , —NR 22 R 23 , —NR 24 C(═O)R 20 , and —OR 20 ; R 8 is chosen from C 1-6 alkyl optionally substituted by 1-3 R 19 , C 2-6 alkenyl optionally substituted by 1-3 R 19 , C 2-6 alkynyl optionally substituted by 1-3 R 19 , C 3-10 cycloalkyl optionally substituted by 1-3 R 19 , 3-10 membered heterocycloalkyl optionally substituted by 1-3 R 19 , halogen, —CN, —C(═O)R 20 , —C(═O)NR 22 R 23 , —NR 22 R 23 , —NR 24 C(═O)R 20 , and —OR 20 ; R 9 is chosen from C 1-6 alkyl optionally substituted by 1-3 R 19 , C 2-6 alkenyl optionally substituted by 1-3 R 19 , C 2-6 alkynyl optionally substituted by 1-3 R 19 , C 6-10 aryl optionally substituted by 1-3 R 19 , C 3-10 cycloalkyl optionally substituted by 1-3 R 19 , 3-10 membered heterocycloalkyl optionally substituted by 1-3 R 19 , 5-10 membered heteroaryl optionally substituted by 1-3 R 19 , halogen, —CN, —C(═O)R 20 , —C(═O)NR 22 R 23 , —NR 22 R 23 , —NR 24 C(═O)R 20 , and —OR 20 ; alternatively, either or both of R 7 and R 8 , and/or R 9 and R 10 , can, together with the atoms linking them, form a C 6-10 aryl optionally substituted by 1-3 R 19 , C 3-10 cycloalkyl optionally substituted by 1-3 R 19 , 3-10 membered heterocycloalkyl optionally substituted by 1-3 R 19 or a 5-10 membered heteroaryl optionally substituted by 1-3 R 19 .

›Embodiment 141

The compound of any of Embodiments 1-108, wherein R 8 and R 9 are independently chosen from H, C 1-6 alkyl optionally substituted by 1-3 R 19 , C 2-6 alkenyl optionally substituted by 1-3 R 19 , C 2-6 alkynyl optionally substituted by 1-3 R 19 , C 6-10 aryl optionally substituted by 1-3 R 19 , C 3-10 cycloalkyl optionally substituted by 1-3 R 19 , 3-10 membered heterocycloalkyl optionally substituted by 1-3 R 19 , 5-10 membered heteroaryl optionally substituted by 1-3 R 19 , halogen, —CN, —C(═O)R 20 , —C(═O)NR 22 R 23 , —NR 22 R 23 , —NR 24 C(═O)R 20 , and —OR 20 ; R 7 and R 10 are independently chosen from C 1-6 alkyl optionally substituted by 1-3 R 19 , C 2-6 alkenyl optionally substituted by 1-3 R 19 , C 2-6 alkynyl optionally substituted by 1-3 R 19 , C 6-10 aryl optionally substituted by 1-3 R 19 , C 3-10 cycloalkyl optionally substituted by 1-3 R 19 , 3-10 membered heterocycloalkyl optionally substituted by 1-3 R 19 , 5-10 membered heteroaryl optionally substituted by 1-3 R 19 , halogen, —CN, —C(═O)R 20 , —C(═O)NR 22 R 23 , —NR 22 R 23 , —NR 24 C(═O)R 20 , and —OR 20 ; alternatively, either or both of R 7 and R 8 , and/or R 9 and R 10 , can, together with the atoms linking them, form a C 6-10 aryl optionally substituted by 1-3 R 19 , C 3-10 cycloalkyl optionally substituted by 1-3 R 19 , 3-10 membered heterocycloalkyl optionally substituted by 1-3 R 19 or a 5-10 membered heteroaryl optionally substituted by 1-3 R 19 .

›Embodiment 142

The compound of any of Embodiments 1-108, wherein R 8 is chosen from H, C 1-6 alkyl optionally substituted by 1-3 R 19 , C 2-6 alkenyl optionally substituted by 1-3 R 19 , C 2-6 alkynyl optionally substituted by 1-3 R 19 , C 3-10 cycloalkyl optionally substituted by 1-3 R 19 , 3-10 membered heterocycloalkyl optionally substituted by 1-3 R 19 , halogen, —CN, —C(═O)R 20 , —C(═O)NR 22 R 23 , —NR 22 R 23 , —NR 24 C(═O)R 20 , and —OR 20 ; R 9 is chosen from H, C 1-6 alkyl optionally substituted by 1-3 R 19 , C 2-6 alkenyl optionally substituted by 1-3 R 19 , C 2-6 alkynyl optionally substituted by 1-3 R 19 , C 6-10 aryl optionally substituted by 1-3 R 19 , C 3-10 cycloalkyl optionally substituted by 1-3 R 19 , 3-10 membered heterocycloalkyl optionally substituted by 1-3 R 19 , 5-10 membered heteroaryl optionally substituted by 1-3 R 19 , halogen, —CN, —C(═O)R 20 , —C(═O)NR 22 R 23 , —NR 22 R 23 , —NR 24 C(═O)R 20 , and —OR 20 ; R 7 and R 10 are independently chosen from C 1-6 alkyl optionally substituted by 1-3 R 19 , C 2-6 alkenyl optionally substituted by 1-3 R 19 , C 2-6 alkynyl optionally substituted by 1-3 R 19 , C 6-10 aryl optionally substituted by 1-3 R 19 , C 3-10 cycloalkyl optionally substituted by 1-3 R 19 , 3-10 membered heterocycloalkyl optionally substituted by 1-3 R 19 , 5-10 membered heteroaryl optionally substituted by 1-3 R 19 , halogen, —CN, —C(═O)R 20 , —C(═O)NR 22 R 23 , —NR 22 R 23 , —NR 24 C(═O)R 20 , and —OR 20 ; alternatively, either or both of R 7 and R 8 , and/or R 9 and R 10 , can, together with the atoms linking them, form a C 6-10 aryl optionally substituted by 1-3 R 19 , C 3-10 cycloalkyl optionally substituted by 1-3 R 19 , 3-10 membered heterocycloalkyl optionally substituted by 1-3 R 19 or a 5-10 membered heteroaryl optionally substituted by 1-3 R 19 .

›Embodiment 143

The compound of any of Embodiments 1-108, wherein R 7 , R 8 , R 9 , and R 10 are independently chosen from H, C 1-6 alkyl, C 2-6 alkenyl, C 2-6 alkynyl optionally substituted by 1-3 R 19 , C 6-10 aryl optionally substituted by 1-3 R 19 , C 3-10 cycloalkyl, 3-10 membered heterocycloalkyl, 5-10 membered heteroaryl, halogen, —CN, —C(═O)R 20 , —C(═O)NR 22 R 23 , —NR 22 R 23 , —NR 24 C(═O)R 20 , and —OR 20 ; alternatively, either or both of R 7 and R 8 , and/or R 9 and R 10 , can, together with the atoms linking them, form a C 6-10 aryl optionally substituted by 1-3 R 19 , C 3-10 cycloalkyl optionally substituted by 1-3 R 19 , 3-10 membered heterocycloalkyl optionally substituted by 1-3 R 19 or a 5-10 membered heteroaryl optionally substituted by 1-3 R 19 .

›Embodiment 144

The compound of any of Embodiments 1-108, wherein R 7 , R 9 , and R 10 are independently chosen from H, C 1-6 alkyl, C 2-6 alkenyl, C 2-6 alkynyl optionally substituted by 1-3 R 19 , C 6-10 aryl optionally substituted by 1-3 R 19 , C 3-10 cycloalkyl, 3-10 membered heterocycloalkyl, 5-10 membered heteroaryl, halogen, —CN, —C(═O)R 20 , —C(═O)NR 22 R 23 , —NR 22 R 23 , —NR 24 C(═O)R 20 , and —OR 20 ; R 8 is chosen from H, C 1-6 alkyl, C 2-6 alkenyl, C 2-6 alkynyl optionally substituted by 1-3 R 19 , C 3-10 cycloalkyl, 3-10 membered heterocycloalkyl, halogen, —CN, —C(═O)R 20 , —C(═O)NR 22 R 23 , —NR 22 R 23 , —NR 24 C(═O)R 20 , and —OR 20 ; alternatively, either or both of R 7 and R 8 , and/or R 9 and R 10 , can, together with the atoms linking them, form a C 6-10 aryl optionally substituted by 1-3 R 19 , C 3-10 cycloalkyl optionally substituted by 1-3 R 19 , 3-10 membered heterocycloalkyl optionally substituted by 1-3 R 19 or a 5-10 membered heteroaryl optionally substituted by 1-3 R 19 .

›Embodiment 145

The compound of any of Embodiments 1-108, wherein R 7 , R 8 , R 9 , and R 10 are independently chosen from H, C 1-6 alkyl, C 2-6 alkenyl, C 2-6 alkynyl optionally substituted by 1-3 R 19 , C 6-10 aryl, C 3-10 cycloalkyl, 3-10 membered heterocycloalkyl, 5-10 membered heteroaryl, halogen, —CN, —C(═O)R 20 , —C(═O)NR 22 R 23 , —NR 22 R 23 , —NR 24 C(═O)R 20 , and —OR 20 ; alternatively, either or both of R 7 and R 8 , and/or R 9 and R 10 , can, together with the atoms linking them, form a C 6-10 aryl, C 3-10 cycloalkyl, 3-10 membered heterocycloalkyl or a 5-10 membered heteroaryl.

›Embodiment 146

The compound of any of Embodiments 1-108, wherein R 7 , R 9 , and R 10 are independently chosen from H, C 1-6 alkyl, C 2-6 alkenyl, C 2-6 alkynyl optionally substituted by 1-3 R 19 , C 6-10 aryl, C 3-10 cycloalkyl, 3-10 membered heterocycloalkyl, 5-10 membered heteroaryl, halogen, —CN, —C(═O)R 20 , —C(═O)NR 22 R 23 , —NR 22 R 23 , —NR 24 C(═O)R 20 , and —OR 20 ; R 8 is chosen from H, C 1-6 alkyl, C 2-6 alkenyl, C 2-6 alkynyl optionally substituted by 1-3 R 19 , C 3-10 cycloalkyl, 3-10 membered heterocycloalkyl, halogen, —CN, —C(═O)R 20 , —C(═O)NR 22 R 23 , —NR 22 R 23 , —NR 24 C(═O)R 20 , and —OR 20 ; alternatively, either or both of R 7 and R 8 , and/or R 9 and R 10 , can, together with the atoms linking them, form a C 6-10 aryl, C 3-10 cycloalkyl, 3-10 membered heterocycloalkyl or a 5-10 membered heteroaryl.

›Embodiment 147

The compound of any of Embodiments 1-108, wherein R 7 , R 8 , R 9 , and R 10 are independently chosen from H, C 1-6 alkyl, C 2-6 alkenyl, C 2-6 alkynyl, C 6-10 aryl, C 3-10 cycloalkyl, 3-10 membered heterocycloalkyl, 5-10 membered heteroaryl, halogen, —CN, —C(═O)R 20 , —C(═O)NR 22 R 23 , —NR 22 R 23 , —NR 24 C(═O)R 20 , and —OR 20 ; alternatively, either or both of R 7 and R 8 , and/or R 9 and R 10 , can, together with the atoms linking them, form a C 6-10 aryl, C 3-10 cycloalkyl, 3-10 membered heterocycloalkyl or a 5-10 membered heteroaryl.

›Embodiment 148

The compound of any of Embodiments 1-108, wherein R 7 , R 9 , and R 10 are independently chosen from H, C 1-6 alkyl, C 2-6 alkenyl, C 2-6 alkynyl, C 6-10 aryl, C 3-10 cycloalkyl, 3-10 membered heterocycloalkyl, 5-10 membered heteroaryl, halogen, —CN, —C(═O)R 20 , —C(═O)NR 22 R 23 , —NR 22 R 23 , —NR 24 C(═O)R 20 , and —OR 20 ; R 8 is chosen from H, C 1-6 alkyl, C 2-6 alkenyl, C 2-6 alkynyl, C 3-10 cycloalkyl, 3-10 membered heterocycloalkyl, halogen, —CN, —C(═O)R 20 , —C(═O)NR 22 R 23 , —NR 22 R 23 , —NR 24 C(═O)R 20 , and —OR 20 ; alternatively, either or both of R 7 and R 8 , and/or R 9 and R 10 , can, together with the atoms linking them, form a C 6-10 aryl, C 3-10 cycloalkyl, 3-10 membered heterocycloalkyl or a 5-10 membered heteroaryl.

›Embodiment 149

The compound of any of Embodiments 1-108, wherein R 7 , R 8 , R 9 , and R 10 are independently chosen from H, C 1-6 alkyl optionally substituted by 1-3 R 19 , C 2-6 alkenyl optionally substituted by 1-3 R 19 , C 2-6 alkynyl optionally substituted by 1-3 R 19 , phenyl optionally substituted by 1-3 R 19 , C 3-6 cycloalkyl optionally substituted by 1-3 R 19 , 3-6 membered heterocycloalkyl optionally substituted by 1-3 R 19 , 5-6 membered heteroaryl optionally substituted by 1-3 R 19 , halogen, —CN, —C(═O)R 20 , —C(═O)NR 22 R 23 , —NR 22 R 23 , —NR 24 C(═O)R 20 , and —OR 20 ; alternatively, either or both of R 7 and R 8 , and/or R 9 and R 10 , can, together with the atoms linking them, form a phenyl optionally substituted by 1-3 R 19 , C 3-6 cycloalkyl optionally substituted by 1-3 R 19 , 3-6 membered heterocycloalkyl optionally substituted by 1-3 R 19 or a 5-6 membered heteroaryl optionally substituted by 1-3 R 19 .

›Embodiment 150

The compound of any of Embodiments 1-108, wherein R 7 , R 9 , and R 10 are independently chosen from H, C 1-6 alkyl optionally substituted by 1-3 R 19 , C 2-6 alkenyl optionally substituted by 1-3 R 19 , C 2-6 alkynyl optionally substituted by 1-3 R 19 , phenyl optionally substituted by 1-3 R 19 , C 3-6 cycloalkyl optionally substituted by 1-3 R 19 , 3-6 membered heterocycloalkyl optionally substituted by 1-3 R 19 , 5-6 membered heteroaryl optionally substituted by 1-3 R 19 , halogen, —CN, —C(═O)R 20 , —C(═O)NR 22 R 23 , —NR 22 R 23 , —NR 24 C(═O)R 20 , and —OR 20 ; R 8 is chosen from H, C 1-6 alkyl optionally substituted by 1-3 R 19 , C 2-6 alkenyl optionally substituted by 1-3 R 19 , C 2-6 alkynyl optionally substituted by 1-3 R 19 , C 3-6 cycloalkyl optionally substituted by 1-3 R 19 , 3-6 membered heterocycloalkyl optionally substituted by 1-3 R 19 , halogen, —CN, —C(═O)R 20 , —C(═O)NR 22 R 23 , —NR 22 R 23 , —NR 24 C(═O)R 20 , and —OR 20 ; alternatively, either or both of R 7 and R 8 , and/or R 9 and R 10 , can, together with the atoms linking them, form a phenyl optionally substituted by 1-3 R 19 , C 3-6 cycloalkyl optionally substituted by 1-3 R 19 , 3-6 membered heterocycloalkyl optionally substituted by 1-3 R 19 or a 5-6 membered heteroaryl optionally substituted by 1-3 R 19 .

›Embodiment 151

The compound of any of Embodiments 1-108, wherein R 7 and R 10 are independently chosen from H, C 1-6 alkyl optionally substituted by 1-3 R 19 , C 2-6 alkenyl optionally substituted by 1-3 R 19 , C 2-6 alkynyl optionally substituted by 1-3 R 19 , phenyl optionally substituted by 1-3 R 19 , C 3-6 cycloalkyl optionally substituted by 1-3 R 19 , 3-6 membered heterocycloalkyl optionally substituted by 1-3 R 19 , 5-6 membered heteroaryl optionally substituted by 1-3 R 19 , halogen, —CN, —C(═O)R 20 , —C(═O)NR 22 R 23 , —NR 22 R 23 , —NR 24 C(═O)R 20 , and —OR 20 ; R 8 and R 9 are independently chosen from C 1-6 alkyl optionally substituted by 1-3 R 19 , C 2-6 alkenyl optionally substituted by 1-3 R 19 , C 2-6 alkynyl optionally substituted by 1-3 R 19 , phenyl optionally substituted by 1-3 R 19 , C 3-6 cycloalkyl optionally substituted by 1-3 R 19 , 3-6 membered heterocycloalkyl optionally substituted by 1-3 R 19 , 5-6 membered heteroaryl optionally substituted by 1-3 R 19 , halogen, —CN, —C(═O)R 20 , —C(═O)NR 22 R 23 , —NR 22 R 23 , —NR 24 C(═O)R 20 , and —OR 20 ; alternatively, either or both of R 7 and R 8 , and/or R 9 and R 10 , can, together with the atoms linking them, form a phenyl optionally substituted by 1-3 R 19 , C 3-6 cycloalkyl optionally substituted by 1-3 R 19 , 3-6 membered heterocycloalkyl optionally substituted by 1-3 R 19 or a 5-6 membered heteroaryl optionally substituted by 1-3 R 19 .

›Embodiment 152

The compound of any of Embodiments 1-108, wherein R 7 and R 10 are independently chosen from H, C 1-6 alkyl optionally substituted by 1-3 R 19 , C 2-6 alkenyl optionally substituted by 1-3 R 19 , C 2-6 alkynyl optionally substituted by 1-3 R 19 , phenyl optionally substituted by 1-3 R 19 , C 3-6 cycloalkyl optionally substituted by 1-3 R 19 , 3-6 membered heterocycloalkyl optionally substituted by 1-3 R 19 , 5-6 membered heteroaryl optionally substituted by 1-3 R 19 , halogen, —CN, —C(═O)R 20 , —C(═O)NR 22 R 23 , —NR 22 R 23 , —NR 24 C(═O)R 20 , and —OR 20 ; R 8 is chosen from C 1-6 alkyl optionally substituted by 1-3 R 19 , C 2-6 alkenyl optionally substituted by 1-3 R 19 , C 2-6 alkynyl optionally substituted by 1-3 R 19 , C 3-6 cycloalkyl optionally substituted by 1-3 R 19 , 3-6 membered heterocycloalkyl optionally substituted by 1-3 R 19 , halogen, —CN, —C(═O)R 20 , —C(═O)NR 22 R 23 , —NR 22 R 23 , —NR 24 C(═O)R 20 , and —OR 20 ; R 9 is chosen from C 1-6 alkyl optionally substituted by 1-3 R 19 , C 2-6 alkenyl optionally substituted by 1-3 R 19 , C 2-6 alkynyl optionally substituted by 1-3 R 19 , phenyl optionally substituted by 1-3 R 19 , C 3-6 cycloalkyl optionally substituted by 1-3 R 19 , 3-6 membered heterocycloalkyl optionally substituted by 1-3 R 19 , 5-6 membered heteroaryl optionally substituted by 1-3 R 19 , halogen, —CN, —C(═O)R 20 , —C(═O)NR 22 R 23 , —NR 22 R 23 , —NR 24 C(═O)R 20 , and —OR 20 ; alternatively, either or both of R 7 and R 8 , and/or R 9 and R 10 , can, together with the atoms linking them, form a phenyl optionally substituted by 1-3 R 19 , C 3-6 cycloalkyl optionally substituted by 1-3 R 19 , 3-6 membered heterocycloalkyl optionally substituted by 1-3 R 19 or a 5-6 membered heteroaryl optionally substituted by 1-3 R 19 .

›Embodiment 153

The compound of any of Embodiments 1-108, wherein R 7 , R 8 , R 9 , and R 10 are independently chosen from H, C 1-6 alkyl, C 2-6 alkenyl, C 2-6 alkynyl optionally substituted by 1-3 R 19 , phenyl, C 3-6 cycloalkyl, 3-6 membered heterocycloalkyl, 5-6 membered heteroaryl, halogen, —CN, —C(═O)R 20 , —C(═O)NR 22 R 23 , —NR 22 R 23 , —NR 24 C(═O)R 20 , and —OR 20 ; alternatively, either or both of R 7 and R 8 , and/or R 9 and R 10 , can, together with the atoms linking them, form a phenyl, C 3-6 cycloalkyl, 3-6 membered heterocycloalkyl or a 5-6 membered heteroaryl.

›Embodiment 154

The compound of any of Embodiments 1-108, wherein R 7 , R 9 , and R 10 are independently chosen from H, C 1-6 alkyl, C 2-6 alkenyl, C 2-6 alkynyl optionally substituted by 1-3 R 19 , phenyl, C 3-6 cycloalkyl, 3-6 membered heterocycloalkyl, 5-6 membered heteroaryl, halogen, —CN, —C(═O)R 20 , —C(═O)NR 22 R 23 , —NR 22 R 23 , —NR 24 C(═O)R 20 , and —OR 20 ; R 8 is chosen from H, C 1-6 alkyl, C 2-6 alkenyl, C 2-6 alkynyl optionally substituted by 1-3 R 19 , C 3-6 cycloalkyl, 3-6 membered heterocycloalkyl, halogen, —CN, —C(═O)R 20 , —C(═O)NR 22 R 23 , —NR 22 R 23 , —NR 24 C(═O)R 20 , and —OR 20 ; alternatively, either or both of R 7 and R 8 , and/or R 9 and R 10 , can, together with the atoms linking them, form a phenyl, C 3-6 cycloalkyl, 3-6 membered heterocycloalkyl or a 5-6 membered heteroaryl.

›Embodiment 155

The compound of any of Embodiments 1-108, wherein R 7 and R 10 are independently chosen from H, C 1-6 alkyl, C 2-6 alkenyl, C 2-6 alkynyl optionally substituted by 1-3 R 19 , phenyl, C 3-6 cycloalkyl, 3-6 membered heterocycloalkyl, 5-6 membered heteroaryl, halogen, —CN, —C(═O)R 20 , —C(═O)NR 22 R 23 , —NR 22 R 23 , —NR 24 C(═O)R 20 , and —OR 20 ; R 8 and R 9 are independently chosen from C 1-6 alkyl, C 2-6 alkenyl, C 2-6 alkynyl optionally substituted by 1-3 R 19 , phenyl, C 3-6 cycloalkyl, 3-6 membered heterocycloalkyl, 5-6 membered heteroaryl, halogen, —CN, —C(═O)R 20 , —C(═O)NR 22 R 23 , —NR 22 R 23 , —NR 24 C(═O)R 20 , and —OR 20 ; alternatively, either or both of R 7 and R 8 , and/or R 9 and R 10 , can, together with the atoms linking them, form a phenyl, C 3-6 cycloalkyl, 3-6 membered heterocycloalkyl or a 5-6 membered heteroaryl.

›Embodiment 156

The compound of any of Embodiments 1-108, wherein R 7 and R 10 are independently chosen from H, C 1-6 alkyl, C 2-6 alkenyl, C 2-6 alkynyl optionally substituted by 1-3 R 19 , phenyl, C 3-6 cycloalkyl, 3-6 membered heterocycloalkyl, 5-6 membered heteroaryl, halogen, —CN, —C(═O)R 20 , —C(═O)NR 22 R 23 , —NR 22 R 23 , —NR 24 C(═O)R 20 , and —OR 20 ; R 8 is chosen from C 1-6 alkyl, C 2-6 alkenyl, C 2-6 alkynyl optionally substituted by 1-3 R 19 , C 3-6 cycloalkyl, 3-6 membered heterocycloalkyl, halogen, —CN, —C(═O)R 20 , —C(═O)NR 22 R 23 , —NR 22 R 23 , —NR 24 C(═O)R 20 , and —OR 20 ; R 9 is chosen from C 1-6 alkyl, C 2-6 alkenyl, C 2-6 alkynyl optionally substituted by 1-3 R 19 , phenyl, C 3-6 cycloalkyl, 3-6 membered heterocycloalkyl, 5-6 membered heteroaryl, halogen, —CN, —C(═O)R 20 , —C(═O)NR 22 R 23 , —NR 22 R 23 , —NR 24 C(═O)R 20 , and —OR 20 ; alternatively, either or both of R 7 and R 8 , and/or R 9 and R 10 , can, together with the atoms linking them, form a phenyl, C 3-6 cycloalkyl, 3-6 membered heterocycloalkyl or a 5-6 membered heteroaryl.

›Embodiment 157

The compound of any of Embodiments 1-108, wherein R 7 , R 8 , R 9 , and R 10 are independently chosen from H, C 1-6 alkyl, C 2-6 alkenyl, C 2-6 alkynyl, phenyl, C 3-6 cycloalkyl, 3-6 membered heterocycloalkyl, 5-6 membered heteroaryl, halogen, —CN, —C(═O)R 20 , —C(═O)NR 22 R 23 , —NR 22 R 23 , —NR 24 C(═O)R 20 , and —OR 20 ; alternatively, either or both of R 7 and R 8 , and/or R 9 and R 10 , can, together with the atoms linking them, form a phenyl, C 3-6 cycloalkyl, 3-6 membered heterocycloalkyl or a 5-6 membered heteroaryl.

›Embodiment 158

The compound of any of Embodiments 1-108, wherein R 7 , R 9 , and R 10 are independently chosen from H, C 1-6 alkyl, C 2-6 alkenyl, C 2-6 alkynyl, phenyl, C 3-6 cycloalkyl, 3-6 membered heterocycloalkyl, 5-6 membered heteroaryl, halogen, —CN, —C(═O)R 20 , —C(═O)NR 22 R 23 , —NR 22 R 23 , —NR 24 C(═O)R 20 , and —OR 20 ; R 8 is chosen from H, C 1-6 alkyl, C 2-6 alkenyl, C 2-6 alkynyl, C 3-6 cycloalkyl, 3-6 membered heterocycloalkyl, halogen, —CN, —C(═O)R 20 , —C(═O)NR 22 R 23 , —NR 22 R 23 , —NR 24 C(═O)R 20 , and —OR 20 ; alternatively, either or both of R 7 and R 8 , and/or R 9 and R 10 , can, together with the atoms linking them, form a phenyl, C 3-6 cycloalkyl, 3-6 membered heterocycloalkyl or a 5-6 membered heteroaryl.

›Embodiment 159

The compound of any of Embodiments 1-108, wherein R 7 , R 8 , R 9 , and R 10 are independently chosen from H, C 1-6 alkyl, C 2-6 alkynyl, phenyl, C 3-6 cycloalkyl, 3-6 membered heterocycloalkyl, 5-6 membered heteroaryl, halogen, —CN, —C(═O)R 20 , —C(═O)NR 22 R 23 , —NR 22 R 23 , —NR 24 C(═O)R 20 , and —OR 20 ; alternatively, either or both of R 7 and R 8 , and/or R 9 and R 10 , can, together with the atoms linking them, form a C 3-6 cycloalkyl or a 3-6 membered heterocycloalkyl.

›Embodiment 160

The compound of any of Embodiments 1-108, wherein R 7 , R 9 , and R 10 are independently chosen from H, C 1-6 alkyl, C 2-6 alkynyl, phenyl, C 3-6 cycloalkyl, 3-6 membered heterocycloalkyl, 5-6 membered heteroaryl, halogen, —CN, —C(═O)R 20 , —C(═O)NR 22 R 23 , —NR 22 R 23 , —NR 24 C(═O)R 20 , and —OR 20 ; R 8 is chosen from H, C 1-6 alkyl, C 2-6 alkynyl, C 3-6 cycloalkyl, 3-6 membered heterocycloalkyl, halogen, —CN, —C(═O)R 20 , —C(═O)NR 22 R 23 , —NR 22 R 23 , —NR 24 C(═O)R 20 , and —OR 20 ; alternatively, either or both of R 7 and R 8 , and/or R 9 and R 10 , can, together with the atoms linking them, form a C 3-6 cycloalkyl or a 3-6 membered heterocycloalkyl.

›Embodiment 161

The compound of any of Embodiments 1-108, wherein R 7 , R 8 , R 9 , and R 10 are independently chosen from H, C 1-6 alkyl optionally substituted by 1-13 R 19 , C 2-6 alkenyl optionally substituted by 1-11 R 19 , C 2-6 alkynyl optionally substituted by 1-9 R 19 , C 6-11 aryl optionally substituted by 1-11 R 19 , C 3-11 cycloalkyl optionally substituted by 1-21 R 19 , 3-15 membered heterocycloalkyl optionally substituted by 1-28 R 19 , 5-15 membered heteroaryl optionally substituted by 1-15 R 19 , halogen, —CN, —C(═O)NR 22 R 23 , and —NR 22 R 23 ; alternatively, either or both of R 7 and R 8 , and/or R 9 and R 10 , can, together with the atoms linking them, form a C 6-11 aryl optionally substituted by 1-11 R 19 , C 3-11 cycloalkyl optionally substituted by 1-21 R 19 , 3-15 membered heterocycloalkyl optionally substituted by 1-28 R 19 or a 5-15 membered heteroaryl optionally substituted by 1-15 R 19 .

›Embodiment 162

The compound of any of Embodiments 1-108, wherein R 7 , R 9 , and R 10 are independently chosen from H, C 1-6 alkyl optionally substituted by 1-13 R 19 , C 2-6 alkenyl optionally substituted by 1-11 R 19 , C 2-6 alkynyl optionally substituted by 1-9 R 19 , C 6-11 aryl optionally substituted by 1-11 R 19 , C 3-11 cycloalkyl optionally substituted by 1-21 R 19 , 3-15 membered heterocycloalkyl optionally substituted by 1-28 R 19 , 5-15 membered heteroaryl optionally substituted by 1-15 R 19 , halogen, —CN, —C(═O)NR 22 R 23 , and —NR 22 R 23 ; R 8 is chosen from H, C 1-6 alkyl optionally substituted by 1-13 R 19 , C 2-6 alkenyl optionally substituted by 1-11 R 19 , C 2-6 alkynyl optionally substituted by 1-9 R 19 , C 3-11 cycloalkyl optionally substituted by 1-21 R 19 , 3-15 membered heterocycloalkyl optionally substituted by 1-28 R 19 , halogen, —CN, —C(═O)NR 22 R 23 , and —NR 22 R 23 ; alternatively, either or both of R 7 and R 8 , and/or R 9 and R 10 , can, together with the atoms linking them, form a C 6-11 aryl optionally substituted by 1-11 R 19 , C 3-11 cycloalkyl optionally substituted by 1-21 R 19 , 3-15 membered heterocycloalkyl optionally substituted by 1-28 R 19 or a 5-15 membered heteroaryl optionally substituted by 1-15 R 19 .

›Embodiment 163

The compound of any of Embodiments 1-108, wherein R 7 and R 8 are independently chosen from H, C 1-6 alkyl optionally substituted by 1-13 R 19 , C 2-6 alkenyl optionally substituted by 1-11 R 19 , C 2-6 alkynyl optionally substituted by 1-9 R 19 , C 6-11 aryl optionally substituted by 1-11 R 19 , C 3-11 cycloalkyl optionally substituted by 1-21 R 19 , 3-15 membered heterocycloalkyl optionally substituted by 1-28 R 19 , 5-15 membered heteroaryl optionally substituted by 1-15 R 19 , halogen, —CN, —C(═O)NR 22 R 23 , and —NR 22 R 23 ; alternatively, R 7 and R 8 can, together with the atoms linking them, form a C 6-11 aryl optionally substituted by 1-11 R 19 , or a 5-15 membered heteroaryl optionally substituted by 1-15 R 19 .

›Embodiment 164

The compound of any of Embodiments 1-108, wherein R 7 is chosen from H, C 1-6 alkyl optionally substituted by 1-13 R 19 , C 2-6 alkenyl optionally substituted by 1-11 R 19 , C 2-6 alkynyl optionally substituted by 1-9 R 19 , C 6-11 aryl optionally substituted by 1-11 R 19 , C 3-11 cycloalkyl optionally substituted by 1-21 R 19 , 3-15 membered heterocycloalkyl optionally substituted by 1-28 R 19 , 5-15 membered heteroaryl optionally substituted by 1-15 R 19 , halogen, —CN, —C(═O)NR 22 R 23 , and —NR 22 R 23 ; R 8 is chosen from H, C 1-6 alkyl optionally substituted by 1-13 R 19 , C 2-6 alkenyl optionally substituted by 1-11 R 19 , C 2-6 alkynyl optionally substituted by 1-9 R 19 , C 3-11 cycloalkyl optionally substituted by 1-21 R 19 , 3-15 membered heterocycloalkyl optionally substituted by 1-28 R 19 , halogen, —CN, —C(═O)NR 22 R 23 , and —NR 22 R 23 ; alternatively, R 7 and R 8 can, together with the atoms linking them, form a C 6-11 aryl optionally substituted by 1-11 R 19 , or a 5-15 membered heteroaryl optionally substituted by 1-15 R 19 .

›Embodiment 165

The compound of any of Embodiments 1-108, wherein R 9 and R 10 are independently chosen from H, C 1-6 alkyl optionally substituted by 1-13 R 19 , C 6-11 aryl optionally substituted by 1-11 R 19 , and —C(═O)NR 22 R 23 ; alternatively, R 9 and R 10 can, together with the atoms linking them, form a C 3-11 cycloalkyl optionally substituted by 1-21 R 19 , or a 3-15 membered heterocycloalkyl optionally substituted by 1-28 R 19 .

›Embodiment 166

The compound of any of Embodiments 1-108, wherein R 7 , R 8 , R 9 , and R 10 are independently chosen from H, C 1-6 alkyl optionally substituted by 1-13 R 19 , C 2-6 alkenyl optionally substituted by 1-11 R 19 , C 2-6 alkynyl optionally substituted by 1-9 R 19 , C 6-11 aryl optionally substituted by 1-11 R 19 , C 3-11 cycloalkyl optionally substituted by 1-21 R 19 , 5-15 membered heteroaryl optionally substituted by 1-15 R 19 , halogen, —CN, —C(═O)NR 22 R 23 , and —NR 22 R 23 ; alternatively, either or both of R 7 and R 8 , and/or R 9 and R 10 , can, together with the atoms linking them, form a C 3-11 cycloalkyl optionally substituted by 1-21 R 19 , a C 6-11 aryl optionally substituted by 1-11 R 19 , a 5-15 membered heteroaryl optionally substituted by 1-15 R 19 , or a 3-15 membered heterocycloalkyl optionally substituted by 1-28 R 19 .

›Embodiment 167

The compound of any of Embodiments 1-108, wherein R 7 , R 9 , and R 10 are independently chosen from H, C 1-6 alkyl optionally substituted by 1-13 R 19 , C 2-6 alkenyl optionally substituted by 1-11 R 19 , C 2-6 alkynyl optionally substituted by 1-9 R 19 , C 6-11 aryl optionally substituted by 1-11 R 19 , C 3-11 cycloalkyl optionally substituted by 1-21 R 19 , 5-15 membered heteroaryl optionally substituted by 1-15 R 19 , halogen, —CN, —C(═O)NR 22 R 23 , and —NR 22 R 23 ; R 8 is chosen from H, C 1-6 alkyl optionally substituted by 1-13 R 19 , C 2-6 alkenyl optionally substituted by 1-11 R 19 , C 2-6 alkynyl optionally substituted by 1-9 R 19 , C 3-11 cycloalkyl optionally substituted by 1-21 R 19 , halogen, —CN, —C(═O)NR 22 R 23 , and —NR 22 R 23 ; alternatively, either or both of R 7 and R 8 , and/or R 9 and R 10 , can, together with the atoms linking them, form a C 3-11 cycloalkyl optionally substituted by 1-21 R 19 , a C 6-11 aryl optionally substituted by 1-11 R 19 , a 5-15 membered heteroaryl optionally substituted by 1-15 R 19 , or a 3-15 membered heterocycloalkyl optionally substituted by 1-28 R 19 .

›Embodiment 168

The compound of any of Embodiments 1-108, wherein R 7 and R 8 are independently chosen from H, C 1-6 alkyl optionally substituted by 1-13 R 19 , C 2-6 alkenyl optionally substituted by 1-11 R 19 , C 2-6 alkynyl optionally substituted by 1-9 R 19 , C 6-11 aryl optionally substituted by 1-11 R 19 , C 3-11 cycloalkyl optionally substituted by 1-21 R 19 , 5-15 membered heteroaryl optionally substituted by 1-15 R 19 , halogen, —CN, —C(═O)NR 22 R 23 , and —NR 22 R 23 ; alternatively, R 7 and R 8 can, together with the atoms linking them, form a C 6-11 aryl optionally substituted by 1-11 R 19 , or a 5-15 membered heteroaryl optionally substituted by 1-15 R 19 .

›Embodiment 169

The compound of any of Embodiments 1-108, wherein R 7 is chosen from H, C 1-6 alkyl optionally substituted by 1-13 R 19 , C 2-6 alkenyl optionally substituted by 1-11 R 19 , C 2-6 alkynyl optionally substituted by 1-9 R 19 , C 6-11 aryl optionally substituted by 1-11 R 19 , C 3-11 cycloalkyl optionally substituted by 1-21 R 19 , 5-15 membered heteroaryl optionally substituted by 1-15 R 19 , halogen, —CN, —C(═O)NR 22 R 23 , and —NR 22 R 23 ; R 8 is chosen from H, C 1-6 alkyl optionally substituted by 1-13 R 19 , C 2-6 alkenyl optionally substituted by 1-11 R 19 , C 2-6 alkynyl optionally substituted by 1-9 R 19 , C 3-11 cycloalkyl optionally substituted by 1-21 R 19 , halogen, —CN, —C(═O)NR 22 R 23 , and —NR 22 R 23 ; alternatively, R 7 and R 8 can, together with the atoms linking them, form a C 6-11 aryl optionally substituted by 1-11 R 19 , or a 5-15 membered heteroaryl optionally substituted by 1-15 R 19 .

›Embodiment 170

The compound of any of Embodiments 1-108, wherein R 9 and R 10 are independently chosen from H, C 1-6 alkyl optionally substituted by 1-13 R 19 , and —C(═O)NR 22 R 23 ; alternatively, R 9 and R 10 can, together with the atoms linking them, form a C 3-11 cycloalkyl optionally substituted by 1-21 R 19 , or a 3-15 membered heterocycloalkyl optionally substituted by 1-28 R 19 .

›Embodiment 171

The compound of any of Embodiments 1-108, wherein R 7 is chosen from H, C 1-6 alkyl optionally substituted by 1-13 R 19 , and halogen; R 8 is chosen from H, C 1-6 alkyl optionally substituted by 1-13 R 19 , C 2-6 alkenyl optionally substituted by 1-11 R 19 , C 2-6 alkynyl optionally substituted by 1-9 R 19 , C 6-11 aryl optionally substituted by 1-11 R 19 , C 3-11 cycloalkyl optionally substituted by 1-21 R 19 , 5-15 membered heteroaryl optionally substituted by 1-15 R 19 , halogen, —CN, —C(═O)NR 22 R 23 , and —NR 22 R 23 ; alternatively, R 7 and R 8 can, together with the atoms linking them, form a C 6-11 aryl optionally substituted by 1-11 R 19 , or a 5-15 membered heteroaryl optionally substituted by 1-15 R 19 .

›Embodiment 172

The compound of any of Embodiments 1-108, wherein R 7 is chosen from H, C 1-6 alkyl optionally substituted by 1-13 R 19 , and halogen; R 8 is chosen from H, C 1-6 alkyl optionally substituted by 1-13 R 19 , C 2-6 alkenyl optionally substituted by 1-11 R 19 , C 2-6 alkynyl optionally substituted by 1-9 R 19 , C 3-11 cycloalkyl optionally substituted by 1-21 R 19 , halogen, —CN, —C(═O)NR 22 R 23 , and —NR 22 R 23 ; alternatively, R 7 and R 8 can, together with the atoms linking them, form a C 6-11 aryl optionally substituted by 1-11 R 19 , or a 5-15 membered heteroaryl optionally substituted by 1-15 R 19 .

›Embodiment 173

The compound of any of Embodiments 1-108, wherein R 9 is chosen from H and C 1-6 alkyl optionally substituted by 1-13 R 19 ; R 10 is chosen from H, C 1-6 alkyl optionally substituted by 1-13 R 19 , and —C(═O)NR 22 R 23 ; alternatively, R 9 and R 10 can, together with the atoms linking them, form a C 3-11 cycloalkyl optionally substituted by 1-21 R 19 , or a 3-15 membered heterocycloalkyl optionally substituted by 1-28 R 19 .

›Embodiment 174

The compound of any of Embodiments 1-108, wherein R 9 is C 1-6 alkyl optionally substituted by 1-13 R 19 ; R 10 is chosen from H, C 1-6 alkyl optionally substituted by 1-13 R 19 , and —C(═O)NR 22 R 23 ; alternatively, R 9 and R 10 can, together with the atoms linking them, form a C 3-11 cycloalkyl optionally substituted by 1-21 R 19 , or a 3-15 membered heterocycloalkyl optionally substituted by 1-28 R 19 .

›Embodiment 175

The compound of any of Embodiments 1-174, wherein R 12 , R 13 , R 14 , and R 15 are independently chosen from H, C 1-6 alkyl optionally substituted by 1-13 R 19 , C 2-6 alkenyl optionally substituted by 1-11 R 19 , C 2-6 alkynyl optionally substituted by 1-9 R 19 , C 6-11 aryl optionally substituted by 1-11 R 19 , C 7-16 arylalkyl optionally substituted by 1-19 R 19 , C 3-11 cycloalkyl optionally substituted by 1-21 R 19 , C 4-17 cycloalkylalkyl optionally substituted by 1-32 R 19 , 3-15 membered heterocycloalkyl optionally substituted by 1-28 R 19 , 4-21 membered heterocycloalkylalkyl optionally substituted by 1-40 R 19 , 5-15 membered heteroaryl optionally substituted by 1-15 R 19 , 6-21 membered heteroarylalkyl optionally substituted by 1-27 R 19 , halogen, —CN, —C(═O)R 20 , —C(═O)OR 20 , —C(═O)NR 22 R 23 , —C(═O)C(═O)R 20 , —C(═NR 25 )R 20 , —C(═NR 25 )NR 22 R 23 , —C(═NOH)NR 22 R 23 , —C(═NOR 26 )R 20 , —C(═NNR 22 R 23 )R 20 , —C(═NNR 24 C(═O)R 21 )R 20 , —C(═NNR 24 C(═O)OR 21 )R 20 , —C(═S)NR 22 R 23 , —NC, —NO 2 , —NR 22 R 23 , —NR 24 NR 22 R 23 , —N═NR 24 , —NR 24 OR 26 , —NR 24 C(═O)R 20 , —NR 24 C(═O)C(═O)R 20 , —NR 24 C(═O)OR 21 , —NR 24 C(═O)C(═O)OR 21 , —NR 24 C(═O)NR 22 R 23 , —NR 24 C(═O)NR 24 C(═O)R 20 , —NR 24 C(═O)NR 24 C(═O)OR 20 , —NR 24 C(═NR 25 )NR 22 R 23 , —NR 24 C(═O)C(═O)NR 22 R 23 , —NR 24 C(═S)R 20 , —NR 24 C(═S)OR 20 , —NR 24 C(═S)NR 22 R 23 , —NR 24 S(═O) 2 R 21 , —NR 24 S(═O) 2 NR 22 R 23 , —NR 24 P(═O)R 28 R 28 , —NR 24 P(═O)(NR 22 R 23 )(NR 22 R 23 ), —NR 24 P(═O)(OR 20 )(OR 20 ), —NR 24 P(═O)(SR 20 )(SR 20 ), —OR 20 , —OCN, —OC(═O)R 20 , —OC(═O)NR 22 R 23 , —OC(═O)OR 20 , —OC(═NR 25 )NR 22 R 23 , —OS(═O)R 20 , —OS(═O) 2 R 20 , —OS(═O) 2 OR 20 , —OS(═O) 2 NR 22 R 23 , —OP(═O)R 28 R 28 , —OP(═O)(NR 22 R 23 )(NR 22 R 23 ), —OP(═O)(OR 20 )(OR 20 ), —OP(═O)(SR 20 )(SR 20 ), —Si(R 24 ) 3 , —SCN, —S(═O) n R 20 , —S(═O) 2 OR 20 , —SO 3 R 27 , —S(═O) 2 NR 22 R 23 , —S(═O)NR 22 R 23 , —SP(═O)R 28 R 28 , —SP(═O)(NR 22 R 23 )(NR 22 R 23 ), —SP(═O)(OR 20 )(OR 20 ), —SP(═O)(SR 20 )(SR 20 ), —P(═O)R 28 R 28 , —P(═O)(NR 22 R 23 )(NR 22 R 23 ), —P(═O)(OR 20 )(OR 20 ), and —P(═O)(SR 20 )(SR 20 ); alternatively, either or both of R 12 and R 13 , and/or R 14 and R 15 , can, together with the atoms linking them, form a C 6-11 aryl optionally substituted by 1-11 R 19 , C 3-11 cycloalkyl optionally substituted by 1-21 R 19 , 3-15 membered heterocycloalkyl optionally substituted by 1-28 R 19 or a 5-15 membered heteroaryl optionally substituted by 1-15 R 19 .

›Embodiment 176

The compound of any of Embodiments 1-174, wherein R 12 , R 13 , R 14 , and R 15 are independently chosen from H, C 1-6 alkyl optionally substituted by 1-13 R 19 , C 2-6 alkenyl optionally substituted by 1-11 R 19 , C 2-6 alkynyl optionally substituted by 1-9 R 19 , C 6-11 aryl optionally substituted by 1-11 R 19 , C 7-16 arylalkyl optionally substituted by 1-19 R 19 , C 3-11 cycloalkyl optionally substituted by 1-21 R 19 , C 4-17 cycloalkylalkyl optionally substituted by 1-32 R 19 , 3-15 membered heterocycloalkyl optionally substituted by 1-28 R 19 , 4-21 membered heterocycloalkylalkyl optionally substituted by 1-40 R 19 , 5-15 membered heteroaryl optionally substituted by 1-15 R 19 , 6-21 membered heteroarylalkyl optionally substituted by 1-27 R 19 , halogen, —CN, —C(═O)R 20 , —C(═O)OR 20 , —C(═O)NR 22 R 23 , —NC, —NO 2 , —NR 22 R 23 , —NR 24 NR 22 R 23 , —N═NR 24 , —NR 24 OR 26 , —NR 24 C(═O)R 20 , —NR 24 C(═O)OR 21 , —NR 24 C(═O)NR 22 R 23 , —NR 24 S(═O) 2 R 21 , —NR 24 S(═O) 2 NR 22 R 23 , —NR 24 P(═O)R 28 R 28 , —NR 24 P(═O)(NR 22 R 23 )(NR 22 R 23 ), —NR 24 P(═O)(OR 20 )(OR 20 ), —OR 20 , —OCN, —OC(═O)R 20 , —OC(═O)NR 22 R 23 , —OC(═O)OR 20 , —OS(═O)R 20 , —OS(═O) 2 R 20 , —OS(═O) 2 OR 20 , —OS(═O) 2 NR 22 R 23 , —OP(═O)R 28 R 28 , —OP(═O)(NR 22 R 23 )(NR 22 R 23 ), —OP(═O)(OR 20 )(OR 20 ), —SCN, —S(═O) n R 20 , —S(═O) 2 OR 20 , —SO 3 R 27 , —S(═O) 2 NR 22 R 23 , —S(═O)NR 22 R 23 , —P(═O)R 28 R 28 , —P(═O)(NR 22 R 23 )(NR 22 R 23 ), and —P(═O)(OR 20 )(OR 20 ); alternatively, either or both of R 12 and R 13 , and/or R 14 and R 15 , can, together with the atoms linking them, form a C 6-11 aryl optionally substituted by 1-11 R 19 , C 3-11 cycloalkyl optionally substituted by 1-21 R 19 , 3-15 membered heterocycloalkyl optionally substituted by 1-28 R 19 or a 5-15 membered heteroaryl optionally substituted by 1-15 R 19 .

›Embodiment 177

The compound of any of Embodiments 1-174, wherein R 12 , R 13 , R 14 , and R 15 are independently chosen from H, C 1-6 alkyl optionally substituted by 1-6 R 19 , C 2-6 alkenyl optionally substituted by 1-6 R 19 , C 2-6 alkynyl optionally substituted by 1-6 R 19 , C 6-11 aryl optionally substituted by 1-6 R 19 , C 7-16 arylalkyl optionally substituted by 1-6 R 19 , C 3-11 cycloalkyl optionally substituted by 1-6 R 19 , C 4-17 cycloalkylalkyl optionally substituted by 1-6 R 19 , 3-15 membered heterocycloalkyl optionally substituted by 1-6 R 19 , 4-21 membered heterocycloalkylalkyl optionally substituted by 1-6 R 19 , 5-15 membered heteroaryl optionally substituted by 1-6 R 19 , 6-21 membered heteroarylalkyl optionally substituted by 1-6 R 19 , halogen, —CN, —C(═O)R 20 , —C(═O)OR 20 , —C(═O)NR 22 R 23 , —NC, —NO 2 , —NR 22 R 23 , —NR 24 NR 22 R 23 , —N═NR 24 , —NR 24 OR 26 , —NR 24 C(═O)R 20 , —NR 24 C(═O)OR 21 , —NR 24 C(═O)NR 22 R 23 , —NR 24 S(═O) 2 R 21 , —NR 24 S(═O) 2 NR 22 R 23 , —NR 24 P(═O)R 28 R 28 , —NR 24 P(═O)(NR 22 R 23 )(NR 22 R 23 ), —NR 24 P(═O)(OR 20 )(OR 20 ), —OR 20 , —OCN, —OC(═O)R 20 , —OC(═O)NR 22 R 23 , —OC(═O)OR 20 , —OS(═O)R 20 , —OS(═O) 2 R 20 , —OS(═O) 2 OR 20 , —OS(═O) 2 NR 22 R 23 , —OP(═O)R 28 R 28 , —OP(═O)(NR 22 R 23 )(NR 22 R 23 ), —OP(═O)(OR 20 )(OR 20 ), —SCN, —S(═O) n R 20 , —S(═O) 2 OR 20 , —SO 3 R 27 , —S(═O) 2 NR 22 R 23 , —S(═O)NR 22 R 23 , —P(═O)R 28 R 28 , —P(═O)(NR 22 R 23 )(NR 22 R 23 ), and —P(═O)(OR 20 )(OR 20 ); alternatively, either or both of R 12 and R 13 , and/or R 14 and R 15 , can, together with the atoms linking them, form a C 6-11 aryl optionally substituted by 1-6 R 19 , C 3-11 cycloalkyl optionally substituted by 1-6 R 19 , 3-15 membered heterocycloalkyl optionally substituted by 1-6 R 19 or a 5-15 membered heteroaryl optionally substituted by 1-6 R 19 .

›Embodiment 178

The compound of any of Embodiments 1-174, wherein R 12 , R 13 , R 14 , and R 15 are independently chosen from H, C 1-6 alkyl optionally substituted by 1-6 R 19 , C 2-6 alkenyl optionally substituted by 1-6 R 19 , C 2-6 alkynyl optionally substituted by 1-6 R 19 , C 6-11 aryl optionally substituted by 1-6 R 19 , C 7-16 arylalkyl optionally substituted by 1-6 R 19 , C 3-11 cycloalkyl optionally substituted by 1-6 R 19 , C 4-17 cycloalkylalkyl optionally substituted by 1-6 R 19 , 3-15 membered heterocycloalkyl optionally substituted by 1-6 R 19 , 4-21 membered heterocycloalkylalkyl optionally substituted by 1-6 R 19 , 5-15 membered heteroaryl optionally substituted by 1-6 R 19 , 6-21 membered heteroarylalkyl optionally substituted by 1-6 R 19 , halogen, —CN, —C(═O)R 20 , —C(═O)OR 20 , —C(═O)NR 22 R 23 , —NO 2 , —NR 22 R 23 , —NR 24 C(═O)R 20 , —NR 24 C(═O)OR 21 , —NR 24 C(═O)NR 22 R 23 , —NR 24 S(═O) 2 R 21 , —NR 24 S(═O) 2 NR 22 R 23 , —OR 20 , —OC(═O)R 20 , —OC(═O)NR 22 R 23 , —OC(═O)OR 20 , —S(═O) n R 20 , —S(═O) 2 OR 20 , —SO 3 R 27 , —S(═O) 2 NR 22 R 23 , —S(═O)NR 22 R 23 , —P(═O)R 28 R 28 , —P(═O)(NR 22 R 23 )(NR 22 R 23 ), and —P(═O)(OR 20 )(OR 20 ); alternatively, either or both of R 12 and R 13 , and/or R 14 and R 15 , can, together with the atoms linking them, form a C 6-11 aryl optionally substituted by 1-6 R 19 , C 3-11 cycloalkyl optionally substituted by 1-6 R 19 , 3-15 membered heterocycloalkyl optionally substituted by 1-6 R 19 or a 5-15 membered heteroaryl optionally substituted by 1-6 R 19 .

›Embodiment 179

The compound of any of Embodiments 1-174, wherein R 12 , R 13 , R 14 , and R 15 are independently chosen from H, C 1-6 alkyl optionally substituted by 1-3 R 19 , C 2-6 alkenyl optionally substituted by 1-3 R 19 , C 2-6 alkynyl optionally substituted by 1-3 R 19 , C 6-11 aryl optionally substituted by 1-3 R 19 , C 7-16 arylalkyl optionally substituted by 1-3 R 19 , C 3-11 cycloalkyl optionally substituted by 1-3 R 19 , C 4-17 cycloalkylalkyl optionally substituted by 1-3 R 19 , 3-15 membered heterocycloalkyl optionally substituted by 1-3 R 19 , 4-21 membered heterocycloalkylalkyl optionally substituted by 1-3 R 19 , 5-15 membered heteroaryl optionally substituted by 1-3 R 19 , 6-21 membered heteroarylalkyl optionally substituted by 1-3 R 19 , halogen, —CN, —C(═O)R 20 , —C(═O)OR 20 , —C(═O)NR 22 R 23 , —NO 2 , —NR 22 R 23 , —NR 24 C(═O)R 20 , —NR 24 C(═O)OR 21 , —NR 24 C(═O)NR 22 R 23 , —NR 24 S(═O) 2 R 21 , —NR 24 S(═O) 2 NR 22 R 23 , —OR 20 , —OC(═O)R 20 , —OC(═O)NR 22 R 23 , —OC(═O)OR 20 , —S(═O) n R 20 , —S(═O) 2 OR 20 , —SO 3 R 27 , —S(═O) 2 NR 22 R 23 , —S(═O)NR 22 R 23 , —P(═O)R 28 R 28 , —P(═O)(NR 22 R 23 )(NR 22 R 23 ), and —P(═O)(OR 20 )(OR 20 ); alternatively, either or both of R 12 and R 13 , and/or R 14 and R 15 , can, together with the atoms linking them, form a C 6-11 aryl optionally substituted by 1-3 R 19 , C 3-11 cycloalkyl optionally substituted by 1-3 R 19 , 3-15 membered heterocycloalkyl optionally substituted by 1-3 R 19 or a 5-15 membered heteroaryl optionally substituted by 1-3 R 19 .

›Embodiment 180

The compound of any of Embodiments 1-174, wherein R 12 , R 13 , R 14 , and R 15 are independently chosen from H, C 1-6 alkyl optionally substituted by 1-3 R 19 , C 2-6 alkenyl optionally substituted by 1-3 R 19 , C 2-6 alkynyl optionally substituted by 1-3 R 19 , C 6-11 aryl optionally substituted by 1-3 R 19 , C 3-11 cycloalkyl optionally substituted by 1-3 R 19 , 3-15 membered heterocycloalkyl optionally substituted by 1-3 R 19 , 5-15 membered heteroaryl optionally substituted by 1-3 R 19 , halogen, —CN, —C(═O)R 20 , —C(═O)OR 20 , —C(═O)NR 22 R 23 , —NO 2 , —NR 22 R 23 , —NR 24 C(═O)R 20 , —NR 24 C(═O)OR 21 , —NR 24 C(═O)NR 22 R 23 , —NR 24 S(═O) 2 R 21 , —NR 24 S(═O) 2 NR 22 R 23 , —OR 20 , —OC(═O)R 20 , —OC(═O)NR 22 R 23 , —OC(═O)OR 20 , —S(═O) n R 20 , —S(═O) 2 OR 20 , —SO 3 R 27 , —S(═O) 2 NR 22 R 23 , —S(═O)NR 22 R 23 , —P(═O)R 28 R 28 , —P(═O)(NR 22 R 23 )(NR 22 R 23 )(NR 22 R 23 ), and —P(═O)(OR 20 )(OR 20 ); alternatively, either or both of R 12 and R 13 and/or R 14 and R 15 , can, together with the atoms linking them, form a C 6-11 aryl optionally substituted by 1-3 R 19 , C 3-11 cycloalkyl optionally substituted by 1-3 R 19 , 3-15 membered heterocycloalkyl optionally substituted by 1-3 R 19 or a 5-15 membered heteroaryl optionally substituted by 1-3 R 19 .

›Embodiment 181

The compound of any of Embodiments 1-174, wherein R 12 , R 13 , R 14 , and R 15 are independently chosen from H, C 1-6 alkyl optionally substituted by 1-3 R 19 , C 2-6 alkenyl optionally substituted by 1-3 R 19 , C 2-6 alkynyl optionally substituted by 1-3 R 19 , C 6-10 aryl optionally substituted by 1-3 R 19 , C 3-7 cycloalkyl optionally substituted by 1-3 R 19 , 3-7 membered heterocycloalkyl optionally substituted by 1-3 R 19 , 5-6 membered heteroaryl optionally substituted by 1-3 R 19 , halogen, —CN, —C(═O)R 20 , —C(═O)OR 20 , —C(═O)NR 22 R 23 , —NO 2 , —NR 22 R 23 , —NR 24 C(═O)R 20 , —NR 24 C(═O)OR 21 , —NR 24 C(═O)NR 22 R 23 , —NR 24 S(═O) 2 R 21 , —NR 24 S(═O) 2 NR 22 R 23 , —OR 20 , —OC(═O)R 20 , —OC(═O)NR 22 R 23 , —OC(═O)OR 20 , —S(═O) n R 20 , —S(═O) 2 OR 20 , —SO 3 R 27 , —S(═O) 2 NR 22 R 23 , —S(═O)NR 22 R 23 , —P(═O)R 28 R 28 , —P(═O)(NR 22 R 23 )(NR 22 R 23 )(NR 22 R 23 ), and —P(═O)(OR 20 )(OR 20 ); alternatively, either or both of R 12 and R 13 and/or R 14 and R 15 , can, together with the atoms linking them, form a C 6-10 aryl optionally substituted by 1-3 R 19 , C 3-7 cycloalkyl optionally substituted by 1-3 R 19 , 3-7 membered heterocycloalkyl optionally substituted by 1-3 R 19 or a 5-6 membered heteroaryl optionally substituted by 1-3 R 19 .

›Embodiment 182

The compound of any of Embodiments 1-174, wherein R 12 , R 13 , R 14 , and R 15 are independently chosen from H, C 1-6 alkyl optionally substituted by 1-3 R 19 , C 2-6 alkenyl optionally substituted by 1-3 R 19 , C 2-6 alkynyl optionally substituted by 1-3 R 19 , C 6-11 aryl optionally substituted by 1-3 R 19 , C 7-16 arylalkyl optionally substituted by 1-3 R 19 , C 3-11 cycloalkyl optionally substituted by 1-3 R 19 , C 4-17 cycloalkylalkyl optionally substituted by 1-3 R 19 , 3-15 membered heterocycloalkyl optionally substituted by 1-3 R 19 , 4-21 membered heterocycloalkylalkyl optionally substituted by 1-3 R 19 , 5-15 membered heteroaryl optionally substituted by 1-3 R 19 , 6-21 membered heteroarylalkyl optionally substituted by 1-3 R 19 , halogen, —CN, —C(═O)R 20 , —C(═O)NR 22 R 23 , —NO 2 , —NR 22 R 23 , —NR 24 C(═O)R 20 , —NR 24 S(═O) 2 R 21 , —OR 20 , —S(═O) n R 20 , and —S(═O) 2 NR 22 R 23 ; alternatively, either or both of R 12 and R 13 , and/or R 14 and R 15 , can, together with the atoms linking them, form a C 6-11 aryl optionally substituted by 1-3 R 19 , C 3-11 cycloalkyl optionally substituted by 1-3 R 19 , 3-15 membered heterocycloalkyl optionally substituted by 1-3 R 19 or a 5-15 membered heteroaryl optionally substituted by 1-3 R 19 .

›Embodiment 183

The compound of any of Embodiments 1-174, wherein R 12 , R 13 , R 14 , and R 15 are independently chosen from H, C 1-6 alkyl optionally substituted by 1-3 R 19 , C 2-6 alkenyl optionally substituted by 1-3 R 19 , C 2-6 alkynyl optionally substituted by 1-3 R 19 , C 6-11 aryl optionally substituted by 1-3 R 19 , C 3-11 cycloalkyl optionally substituted by 1-3 R 19 , 3-15 membered heterocycloalkyl optionally substituted by 1-3 R 19 , 5-15 membered heteroaryl optionally substituted by 1-3 R 19 , halogen, —CN, —C(═O)R 20 , —C(═O)NR 22 R 23 , —NO 2 , —NR 22 R 23 , —NR 24 C(═O)R 20 , —NR 24 S(═O) 2 R 21 , —OR 20 , —S(═O) n R 20 , and —S(═O) 2 NR 22 R 23 ; alternatively, either or both of R 12 and R 13 , and/or R 14 and R 15 , can, together with the atoms linking them, form a C 6-11 aryl optionally substituted by 1-3 R 19 , C 3-11 cycloalkyl optionally substituted by 1-3 R 19 , 3-15 membered heterocycloalkyl optionally substituted by 1-3 R 19 or a 5-15 membered heteroaryl optionally substituted by 1-3 R 19 .

›Embodiment 184

The compound of any of Embodiments 1-174, wherein R 12 , R 13 and R 15 are H; R 14 is chosen from H, C 1-6 alkyl optionally substituted by 1-3 R 19 , C 2-6 alkenyl optionally substituted by 1-3 R 19 , C 2-6 alkynyl optionally substituted by 1-3 R 19 , C 6-11 aryl optionally substituted by 1-3 R 19 , C 3-11 cycloalkyl optionally substituted by 1-3 R 19 , 3-15 membered heterocycloalkyl optionally substituted by 1-3 R 19 , 5-15 membered heteroaryl optionally substituted by 1-3 R 19 , halogen, —CN, —C(═O)R 20 , —C(═O)NR 22 R 23 , —NO 2 , —NR 22 R 23 , —NR 24 C(═O)R 20 , —NR 24 S(═O) 2 R 21 , —OR 20 , —S(═O) n R 20 , and —S(═O) 2 NR 22 R 23 ; alternatively, either or both of R 12 and R 13 , and/or R 14 and R 15 , can, together with the atoms linking them, form a C 6-11 aryl optionally substituted by 1-3 R 19 , C 3-11 cycloalkyl optionally substituted by 1-3 R 19 , 3-15 membered heterocycloalkyl optionally substituted by 1-3 R 19 or a 5-15 membered heteroaryl optionally substituted by 1-3 R 19 .

›Embodiment 185

The compound of any of Embodiments 1-174, wherein R 12 , R 13 and R 14 are H; R 15 is chosen from H, C 1-6 alkyl optionally substituted by 1-3 R 19 , C 2-6 alkenyl optionally substituted by 1-3 R 19 , C 2-6 alkynyl optionally substituted by 1-3 R 19 , C 6-11 aryl optionally substituted by 1-3 R 19 , C 3-11 cycloalkyl optionally substituted by 1-3 R 19 , 3-15 membered heterocycloalkyl optionally substituted by 1-3 R 19 , 5-15 membered heteroaryl optionally substituted by 1-3 R 19 , halogen, —CN, —C(═O)R 20 , —C(═O)NR 22 R 23 , —NO 2 , —NR 22 R 23 , —NR 24 C(═O)R 20 , —NR 24 S(═O) 2 R 21 , —OR 20 , —S(═O) n R 20 , and —S(═O) 2 NR 22 R 23 ; alternatively, either or both of R 12 and R 13 , and/or R 14 and R 15 , can, together with the atoms linking them, form a C 6-11 aryl optionally substituted by 1-3 R 19 , C 3-11 cycloalkyl optionally substituted by 1-3 R 19 , 3-15 membered heterocycloalkyl optionally substituted by 1-3 R 19 or a 5-15 membered heteroaryl optionally substituted by 1-3 R 19 .

›Embodiment 186

The compound of any of Embodiments 1-174, wherein R 12 , R 13 and R 15 are H; R 14 is chosen from H, C 1-6 alkyl optionally substituted by 1-3 R 19 , C 2-6 alkenyl optionally substituted by 1-3 R 19 , C 2-6 alkynyl optionally substituted by 1-3 R 19 , C 6-11 aryl optionally substituted by 1-3 R 19 , C 3-11 cycloalkyl optionally substituted by 1-3 R 19 , 3-15 membered heterocycloalkyl optionally substituted by 1-3 R 19 , 5-15 membered heteroaryl optionally substituted by 1-3 R 19 , halogen, —CN, —C(═O)R 20 , —C(═O)NR 22 R 23 , —NO 2 , —NR 22 R 23 , —NR 24 C(═O)R 20 , —NR 24 S(═O) 2 R 21 , —OR 20 , —S(═O) n R 20 , and —S(═O) 2 NR 22 R 23 .

›Embodiment 187

The compound of any of Embodiments 1-174, wherein R 12 , R 13 and R 14 are H; R 15 is chosen from H, C 1-6 alkyl optionally substituted by 1-3 R 19 , C 2-6 alkenyl optionally substituted by 1-3 R 19 , C 2-6 alkynyl optionally substituted by 1-3 R 19 , C 6-11 aryl optionally substituted by 1-3 R 19 , C 3-11 cycloalkyl optionally substituted by 1-3 R 19 , 3-15 membered heterocycloalkyl optionally substituted by 1-3 R 19 , 5-15 membered heteroaryl optionally substituted by 1-3 R 19 , halogen, —CN, —C(═O)R 20 , —C(═O)NR 22 R 23 , —NO 2 , —NR 22 R 23 , —NR 24 C(═O)R 20 , —NR 24 S(═O) 2 R 21 , —OR 20 , —S(═O) n R 20 , and —S(═O) 2 NR 22 R 23 .

›Embodiment 188

The compound of any of Embodiments 1-174, wherein R 12 , R 13 , R 14 , and R 15 are independently chosen from H, C 1-6 alkyl optionally substituted by 1-3 R 19 , C 2-6 alkenyl optionally substituted by 1-3 R 19 , C 2-6 alkynyl optionally substituted by 1-3 R 19 , C 6-10 aryl optionally substituted by 1-3 R 19 , C 3-7 cycloalkyl optionally substituted by 1-3 R 19 , 3-7 membered heterocycloalkyl optionally substituted by 1-3 R 19 , 5-6 membered heteroaryl optionally substituted by 1-3 R 19 , halogen, —CN, —C(═O)R 20 , —C(═O)NR 22 R 23 , —NO 2 , —NR 22 R 23 , —NR 24 C(═O)R 20 , —NR 24 S(═O) 2 R 21 , —OR 20 , —S(═O) n R 20 , and —S(═O) 2 NR 22 R 23 ; alternatively, either or both of R 12 and R 13 , and/or R 14 and R 15 , can, together with the atoms linking them, form a C 6-10 aryl optionally substituted by 1-3 R 19 , C 3-7 cycloalkyl optionally substituted by 1-3 R 19 , 3-7 membered heterocycloalkyl optionally substituted by 1-3 R 19 or a 5-6 membered heteroaryl optionally substituted by 1-3 R 19 .

›Embodiment 189

The compound of any of Embodiments 1-174, wherein R 12 , R 13 and R 15 are H; R 14 is chosen from H, C 1-6 alkyl optionally substituted by 1-3 R 19 , C 2-6 alkenyl optionally substituted by 1-3 R 19 , C 2-6 alkynyl optionally substituted by 1-3 R 19 , C 6-10 aryl optionally substituted by 1-3 R 19 , C 3-7 cycloalkyl optionally substituted by 1-3 R 19 , 3-7 membered heterocycloalkyl optionally substituted by 1-3 R 19 , 5-6 membered heteroaryl optionally substituted by 1-3 R 19 , halogen, —CN, —C(═O)R 20 , —C(═O)NR 22 R 23 , —NO 2 , —NR 22 R 23 , —NR 24 C(═O)R 20 , —NR 24 S(═O) 2 R 21 , —OR 20 , —S(═O) n R 20 , and —S(═O) 2 NR 22 R 23 ; alternatively, either or both of R 12 and R 13 , and/or R 14 and R 15 , can, together with the atoms linking them, form a C 6-10 aryl optionally substituted by 1-3 R 19 , C 3-7 cycloalkyl optionally substituted by 1-3 R 19 , 3-7 membered heterocycloalkyl optionally substituted by 1-3 R 19 or a 5-6 membered heteroaryl optionally substituted by 1-3 R 19 .

›Embodiment 190

The compound of any of Embodiments 1-174, wherein R 12 , R 13 and R 14 are H; R 15 is chosen from H, C 1-6 alkyl optionally substituted by 1-3 R 19 , C 2-6 alkenyl optionally substituted by 1-3 R 19 , C 2-6 alkynyl optionally substituted by 1-3 R 19 , C 6-10 aryl optionally substituted by 1-3 R 19 , C 3-7 cycloalkyl optionally substituted by 1-3 R 19 , 3-7 membered heterocycloalkyl optionally substituted by 1-3 R 19 , 5-6 membered heteroaryl optionally substituted by 1-3 R 19 , halogen, —CN, —C(═O)R 20 , —C(═O)NR 22 R 23 , —NO 2 , —NR 22 R 23 , —NR 24 C(═O)R 20 , —NR 24 S(═O) 2 R 21 , —OR 20 , —S(═O) n R 20 , and —S(═O) 2 NR 22 R 23 ; alternatively, either or both of R 12 and R 13 , and/or R 14 and R 15 , can, together with the atoms linking them, form a C 6-10 aryl optionally substituted by 1-3 R 19 , C 3-7 cycloalkyl optionally substituted by 1-3 R 19 , 3-7 membered heterocycloalkyl optionally substituted by 1-3 R 19 or a 5-6 membered heteroaryl optionally substituted by 1-3 R 19 .

›Embodiment 191

The compound of any of Embodiments 1-174, wherein R 12 , R 13 and R 15 are H; R 14 is chosen from H, C 1-6 alkyl optionally substituted by 1-3 R 19 , C 2-6 alkenyl optionally substituted by 1-3 R 19 , C 2-6 alkynyl optionally substituted by 1-3 R 19 , C 6-10 aryl optionally substituted by 1-3 R 19 , C 3-7 cycloalkyl optionally substituted by 1-3 R 19 , 3-7 membered heterocycloalkyl optionally substituted by 1-3 R 19 , 5-6 membered heteroaryl optionally substituted by 1-3 R 19 , halogen, —CN, —C(═O)R 20 , —C(═O)NR 22 R 23 , —NO 2 , —NR 22 R 23 , —NR 24 C(═O)R 20 , —NR 24 S(═O) 2 R 21 , —OR 20 , —S(═O) n R 20 , and —S(═O) 2 NR 22 R 23 .

›Embodiment 192

The compound of any of Embodiments 1-174, wherein R 12 , R 13 and R 14 are H; R 15 is chosen from H, C 1-6 alkyl optionally substituted by 1-3 R 19 , C 2-6 alkenyl optionally substituted by 1-3 R 19 , C 2-6 alkynyl optionally substituted by 1-3 R 19 , C 6-10 aryl optionally substituted by 1-3 R 19 , C 3-7 cycloalkyl optionally substituted by 1-3 R 19 , 3-7 membered heterocycloalkyl optionally substituted by 1-3 R 19 , 5-6 membered heteroaryl optionally substituted by 1-3 R 19 , halogen, —CN, —C(═O)R 20 , —C(═O)NR 22 R 23 , —NO 2 , —NR 22 R 23 , —NR 24 C(═O)R 20 , —NR 24 S(═O) 2 R 21 , —OR 20 , —S(═O) n R 20 , and —S(═O) 2 NR 22 R 23 .

›Embodiment 193

The compound of any of Embodiments 1-174, wherein R 12 , R 13 , R 14 , and R 15 are independently chosen from H, C 1-6 alkyl optionally substituted by 1-3 R 19 , halogen, —NR 22 R 23 , —NR 24 C(═O)R 20 , —NR 24 C(═O)NR 22 R 23 , —OR 20 , and —S(═O) 2 NR 22 R 23 .

›Embodiment 194

The compound of any of Embodiments 1-174, wherein R 12 , R 13 , R 14 , and R 15 are independently chosen from H, C 1-6 alkyl optionally substituted by 1-3 R 19 , halogen, —NR 22 R 23 , —NR 24 C(═O)R 20 , and —NR 24 C(═O)NR 22 R 23 .

›Embodiment 195

The compound of any of Embodiments 1-174, wherein R 12 , R 13 and R 15 are H; R 14 is chosen from H, C 1-6 alkyl optionally substituted by 1-3 R 19 , halogen, —NR 22 R 23 , —NR 24 C(═O)R 20 , —NR 24 C(═O)NR 22 R 23 , —OR 20 , and —S(═O) 2 NR 22 R 23 .

›Embodiment 196

The compound of any of Embodiments 1-174, wherein R 12 , R 13 and R 15 are H; R 14 is chosen from H, C 1-6 alkyl optionally substituted by 1-3 R 19 , —NR 22 R 23 , —NR 24 C(═O)R 20 , and —NR 24 C(═O)NR 22 R 23 .

›Embodiment 197

The compound of any of Embodiments 1-174, wherein R 12 , R 13 and R 14 are H; R 15 is chosen from H, C 1-6 alkyl optionally substituted by 1-3 R 19 , halogen, —NR 22 R 23 , —NR 24 C(═O)R 20 , —NR 24 C(═O)NR 22 R 23 , —OR 20 , and —S(═O) 2 NR 22 R 23 .

›Embodiment 198

The compound of any of Embodiments 1-174, wherein R 12 , R 13 and R 14 are H; R 15 is chosen from H, C 1-6 alkyl optionally substituted by 1-3 R 19 , and halogen.

›Embodiment 199

The compound of any of Embodiments 1-174, wherein R 12 , R 13 , R 14 , and R 15 are independently chosen from H and C 1-6 alkyl optionally substituted by 1-3 R 19 .

›Embodiment 200

The compound of any of Embodiments 1-174, wherein R 12 , R 13 , R 14 , and R 15 are independently chosen from H, C 1-6 alkyl, halogen, —NR 22 R 23 , —NR 24 C(═O)R 20 , —NR 24 C(═O)NR 22 R 23 , —OR 20 , and —S(═O) 2 NR 22 R 23 .

›Embodiment 201

The compound of any of Embodiments 1-174, wherein R 12 , R 13 , R 14 , and R 15 are independently chosen from H, C 1-6 alkyl, halogen, —NR 22 R 23 , —NR 24 C(═O)R 20 , and —NR 24 C(═O)NR 22 R 23 .

›Embodiment 202

The compound of any of Embodiments 1-174, wherein R 12 , R 13 and R 15 are H; R 14 is chosen from H, C 1-6 alkyl, halogen, —NR 22 R 23 , —NR 24 C(═O)R 20 , —NR 24 C(═O)NR 22 R 23 , —OR 20 , and —S(═O) 2 NR 22 R 23 .

›Embodiment 203

The compound of any of Embodiments 1-174, wherein R 12 , R 13 and R 15 are H; R 14 is chosen from H, C 1-6 alkyl, —NR 22 R 23 , —NR 24 C(═O)R 20 , and —NR 24 C(═O)NR 22 R 23 .

›Embodiment 204

The compound of any of Embodiments 1-174, wherein R 12 , R 13 and R 14 are H; R 15 is chosen from H, C 1-6 alkyl, halogen, —NR 22 R 23 , —NR 24 C(═O)R 20 , —NR 24 C(═O)NR 22 R 23 , —OR 20 , and —S(═O) 2 NR 22 R 23 .

›Embodiment 205

The compound of any of Embodiments 1-174, wherein R 12 , R 13 and R 14 are H; R 15 is chosen from H, C 1-6 alkyl, and halogen.

›Embodiment 206

The compound of any of Embodiments 1-174, wherein R 12 , R 13 , R 14 , and R 15 are independently chosen from H and C 1-6 alkyl.

›Embodiment 207

The compound of any of Embodiments 1-174, wherein R 12 , R 13 , R 14 , and R 15 are independently chosen from H, C 1-6 alkyl optionally substituted by 1-13 R 19 , C 2-6 alkenyl optionally substituted by 1-11 R 19 , C 2-6 alkynyl optionally substituted by 1-9 R 19 , C 6-11 aryl optionally substituted by 1-11 R 19 , C 7-16 arylalkyl optionally substituted by 1-19 R 19 , C 3-11 cycloalkyl optionally substituted by 1-21 R 19 , C 4-17 cycloalkylalkyl optionally substituted by 1-32 R 19 , 3-15 membered heterocycloalkyl optionally substituted by 1-28 R 19 , 4-21 membered heterocycloalkylalkyl optionally substituted by 1-40 R 19 , 5-15 membered heteroaryl optionally substituted by 1-15 R 19 , 6-21 membered heteroarylalkyl optionally substituted by 1-27 R 19 , halogen, —CN, —C(═O)R 20 , —C(═O)OR 20 , —C(═O)NR 22 R 23 , —NO 2 , —NR 22 R 23 , and —OR 20 ; alternatively, either or both of R 12 and R 13 , and/or R 14 and R 15 , can, together with the atoms linking them, form a C 6-11 aryl optionally substituted by 1-11 R 19 , C 3-11 cycloalkyl optionally substituted by 1-21 R 19 , 3-15 membered heterocycloalkyl optionally substituted by 1-28 R 19 or a 5-15 membered heteroaryl optionally substituted by 1-15 R 19 .

›Embodiment 208

The compound of any of Embodiments 1-174, wherein R 12 , R 13 , R 14 , and R 15 are independently chosen from H, C 1-6 alkyl optionally substituted by 1-13 R 19 , C 2-6 alkenyl optionally substituted by 1-11 R 19 , C 2-6 alkynyl optionally substituted by 1-9 R 19 , C 6-11 aryl optionally substituted by 1-11 R 19 , C 7-16 arylalkyl optionally substituted by 1-19 R 19 , C 3-11 cycloalkyl optionally substituted by 1-21 R 19 , C 4-17 cycloalkylalkyl optionally substituted by 1-32 R 19 , 3-15 membered heterocycloalkyl optionally substituted by 1-28 R 19 , 4-21 membered heterocycloalkylalkyl optionally substituted by 1-40 R 19 , 5-15 membered heteroaryl optionally substituted by 1-15 R 19 , 6-21 membered heteroarylalkyl optionally substituted by 1-27 R 19 , halogen, —CN, —C(═O)NR 22 R 23 , —NO 2 , —NR 22 R 23 , and —OR 20 ; alternatively, either or both of R 12 and R 13 , and/or R 14 and R 15 , can, together with the atoms linking them, form a C 6-11 aryl optionally substituted by 1-11 R 19 , C 3-11 cycloalkyl optionally substituted by 1-21 R 19 , 3-15 membered heterocycloalkyl optionally substituted by 1-28 R 19 or a 5-15 membered heteroaryl optionally substituted by 1-15 R 19 .

›Embodiment 209

The compound of any of Embodiments 1-174, wherein R 12 , R 13 , R 14 , and R 15 are independently chosen from H, halogen, —NR 22 R 23 , —NR 24 C(═O)R 20 , —NR 24 C(═O)NR 22 R 23 , —OR 20 , and —S(═O) 2 NR 22 R 23 .

›Embodiment 210

The compound of any of Embodiments 1-174, wherein R 12 , R 13 , R 14 , and R 15 are independently chosen from H, halogen, —NR 22 R 23 , —NR 24 C(═O)R 20 , and —NR 24 C(═O)NR 22 R 23 .

›Embodiment 211

The compound of any of Embodiments 1-174, wherein R 12 , R 13 , and R 15 are H; R 14 is chosen from H, halogen, —NR 22 R 23 , —NR 24 C(═O)R 20 , —NR 24 C(═O)NR 22 R 23 , —OR 20 , and —S(═O) 2 NR 22 R 23 .

›Embodiment 212

The compound of any of Embodiments 1-174, wherein R 12 , R 13 and R 15 are H; R 14 is chosen from H, —NR 22 R 23 , —NR 24 C(═O)R 20 , and —NR 24 C(═O)NR 22 R 23 .

›Embodiment 213

The compound of any of Embodiments 1-174, wherein R 12 , R 13 and R 14 are H; R 15 is chosen from H, halogen, —NR 22 R 23 , —NR 24 C(═O)R 20 , —NR 24 C(═O)NR 22 R 23 , —OR 20 , and —S(═O) 2 NR 22 R 23 .

›Embodiment 214

The compound of any of Embodiments 1-174, wherein R 12 , R 13 and R 14 are H; R 15 is chosen from H and halogen.

›Embodiment 215

The compound of any of Embodiments 1-174, wherein R 12 , R 13 , R 14 , and R 15 are H.

›Embodiment 216

The compound of any of Embodiments 1-215, wherein R 17 is chosen from H, C 1-6 alkyl optionally substituted by 1-13 R 19 , C 2-6 alkenyl optionally substituted by 1-11 R 19 , C 2-6 alkynyl optionally substituted by 1-9 R 19 , C 6-11 aryl optionally substituted by 1-11 R 19 , C 7-16 arylalkyl optionally substituted by 1-19 R 19 , C 3-11 cycloalkyl optionally substituted by 1-21 R 19 , C 4-17 cycloalkylalkyl optionally substituted by 1-32 R 19 , 3-15 membered heterocycloalkyl optionally substituted by 1-28 R 19 , 4-21 membered heterocycloalkylalkyl optionally substituted by 1-40 R 19 , 5-15 membered heteroaryl optionally substituted by 1-15 R 19 , 6-21 membered heteroarylalkyl optionally substituted by 1-27 R 19 , and —OR 20 ; R 16 and R 18 are independently chosen from H, C 1-6 alkyl optionally substituted by 1-13 R 19 , C 2-6 alkenyl optionally substituted by 1-11 R 19 , C 2-6 alkynyl optionally substituted by 1-9 R 19 , C 6-11 aryl optionally substituted by 1-11 R 19 , C 7-16 arylalkyl optionally substituted by 1-19 R 19 , C 3-11 cycloalkyl optionally substituted by 1-21 R 19 , C 4-17 cycloalkylalkyl optionally substituted by 1-32 R 19 , 3-15 membered heterocycloalkyl optionally substituted by 1-28 R 19 , 4-21 membered heterocycloalkylalkyl optionally substituted by 1-40 R 19 , 5-15 membered heteroaryl optionally substituted by 1-15 R 19 , 6-21 membered heteroarylalkyl optionally substituted by 1-27 R 19 , halogen, —CN, —C(═O)R 20 , —C(═O)OR 20 , —C(═O)NR 22 R 23 , —C(═O)C(═O)R 20 , —C(═NR 25 )R 20 , —C(═NR 25 )NR 22 R 23 , —C(═NOH)NR 22 R 23 , —C(═NOR 26 )R 20 , —C(═NNR 22 R 23 )R 20 , —C(═NNR 24 C(═O)R 21) R 20 , —C(═NNR 24 C(═O)OR 21 )R 20 , —C(═S)NR 22 R 23 , —NC, —NO 2 , —NR 22 R 23 , —NR 24 NR 22 R 23 , —N═NR 24 , —NR 24 OR 26 , —NR 24 C(═O)R 20 , —NR 24 C(═O)C(═O)R 20 , —NR 24 C(═O)OR 21 , —NR 24 C(═O)C(═O)OR 21 , —NR 24 C(═O)NR 22 R 23 , —NR 24 C(═O)NR 24 C(═O)R 20 , —NR 24 C(═O)NR 24 C(═O)OR 20 , —NR 24 C(═NR 25 )NR 22 R 23 , —NR 24 C(═O)C(═O)NR 22 R 23 , —NR 24 C(═S)R 20 , —NR 24 C(═S)OR 20 , —NR 24 C(═S)NR 22 R 23 , —NR 24 S(═O) 2 R 21 , —NR 24 S(═O) 2 NR 22 R 23 , —NR 24 P(═O)R 28 R 28 , —NR 24 P(═O)(NR 22 R 23 )(NR 22 R 23 ), —NR 24 P(═O)(OR 20 )(OR 20 ), —NR 24 P(═O)(SR 20 )(SR 20 ), —OR 20 , —OCN, —OC(═O)R 20 , —OC(═O)NR 22 R 23 , —OC(═O)OR 20 , —OC(═NR 25 )NR 22 R 23 , —OS(═O)R 20 , —OS(═O) 2 R 20 , —OS(═O) 2 OR 20 , —OS(═O) 2 NR 22 R 23 , —OP(═O)R 28 R 28 , —OP(═O)(NR 22 R 23 )(NR 22 R 23 ), —OP(═O)(OR 20 )(OR 20 ), —OP(═O)(SR 20 )(SR 20 ), —Si(R 24 ) 3 , —SCN, —S(═O) n R 20 , —S(═O) 2 OR 20 , —SO 3 R 27 , —S(═O) 2 NR 22 R 23 , —S(═O)NR 22 R 23 , —SP(═O)R 28 R 28 , —SP(═O)(NR 22 R 23 )(NR 22 R 23 ), —SP(═O)(OR 20 )(OR 20 ), —SP(═O)(SR 20 )(SR 20 ), —P(═O)R 28 R 28 , —P(═O)(NR 22 R 23 )(NR 22 R 23 ), —P(═O)(OR 20 )(OR 20 ), or —P(═O)(SR 20 )(SR 20 ); alternatively, R 16 and R 17 can, together with the atoms linking them, form a 3-15 membered heterocycloalkyl optionally substituted by 1-28 R 19 or a 5-15 membered heteroaryl optionally substituted by 1-15 R 19 .

›Embodiment 217

The compound of any of Embodiments 1-215, wherein R 17 is chosen from H and C 1-6 alkyl optionally substituted by 1-13 R 19 ; R 16 and R 18 are independently chosen from H, C 1-6 alkyl optionally substituted by 1-13 R 19 , C 2-6 alkenyl optionally substituted by 1-11 R 19 , C 2-6 alkynyl optionally substituted by 1-9 R 19 , C 6-11 aryl optionally substituted by 1-11 R 19 , C 7-16 arylalkyl optionally substituted by 1-19 R 19 , C 3-11 cycloalkyl optionally substituted by 1-21 R 19 , C 4-17 cycloalkylalkyl optionally substituted by 1-32 R 19 , 3-15 membered heterocycloalkyl optionally substituted by 1-28 R 19 , 4-21 membered heterocycloalkylalkyl optionally substituted by 1-40 R 19 , 5-15 membered heteroaryl optionally substituted by 1-15 R 19 , 6-21 membered heteroarylalkyl optionally substituted by 1-27 R 19 , halogen, —CN, —C(═O)R 20 , —C(═O)OR 20 , —C(═O)NR 22 R 23 , —C(═O)C(═O)R 20 , —C(═NR 25 )R 20 , —C(═NR 25 )NR 22 R 23 , —C(═NOH)NR 22 R 23 , —C(═NOR 26 )R 20 , —C(═NNR 22 R 23 )R 20 , —C(═NNR 24 C(═O)R 21 )R 20 , —C(═NNR 24 C(═O)OR 21 )R 20 , —C(═S)NR 22 R 23 , —NC, —NO 2 , —NR 22 R 23 , —NR 24 NR 22 R 23 , —N═NR 24 , —NR 24 OR 26 , —NR 24 C(═O)R 20 , —NR 24 C(═O)C(═O)R 20 , —NR 24 C(═O)OR 21 , —NR 24 C(═O)C(═O)OR 21 , —NR 24 C(═O)NR 22 R 23 , —NR 24 C(═O)NR 24 C(═O)R 20 , —NR 24 C(═O)NR 24 C(═O)OR 20 , —NR 24 C(═NR 25 )NR 22 R 23 , —NR 24 C(═O)C(═O)NR 22 R 23 , —NR 24 C(═S)R 20 , —NR 24 C(═S)OR 20 , —NR 24 C(═S)NR 22 R 23 , —NR 24 S(═O) 2 R 21 , —NR 24 S(═O) 2 NR 22 R 23 , —NR 24 P(═O)R 28 R 28 , —NR 24 P(═O)(NR 22 R 23 )(NR 22 R 23 ), —NR 24 P(═O)(OR 20 )(OR 20 ), —NR 24 P(═O)(SR 20 )(SR 20 ), —OR 20 , —OCN, —OC(═O)R 20 , —OC(═O)NR 22 R 23 , —OC(═O)OR 20 , —OC(═NR 25 )NR 22 R 23 , —OS(═O)R 20 , —OS(═O) 2 R 20 , —OS(═O) 2 OR 20 , —OS(═O) 2 NR 22 R 23 , —OP(═O)R 28 R 28 , —OP(═O)(NR 22 R 23 )(NR 22 R 23 ), —OP(═O)(OR 20 )(OR 20 ), —OP(═O)(SR 20 )(SR 20 ), —Si(R 24 ) 3 , —SCN, —S(═O) n R 20 , —S(═O) 2 OR 20 , —SO 3 R 27 , —S(═O) 2 NR 22 R 23 , —S(═O)NR 22 R 23 , —SP(═O)R 28 R 28 , —SP(═O)(NR 22 R 23 )(NR 22 R 23 ), —SP(═O)(OR 20 )(OR 20 ), —SP(═O)(SR 20 )(SR 20 ), —P(═O)R 28 R 28 , —P(═O)(NR 22 R 23 )(NR 22 R 23 ), —P(═O)(OR 20 )(OR 20 ), or —P(═O)(SR 20 )(SR 20 ); alternatively, R 16 and R 17 can, together with the atoms linking them, form a 3-15 membered heterocycloalkyl optionally substituted by 1-28 R 19 or a 5-15 membered heteroaryl optionally substituted by 1-15 R 19 .

›Embodiment 218

The compound of any of Embodiments 1-215, wherein R 17 is chosen from H and C 1-6 alkyl optionally substituted by 1-3 R 19 ; R 16 and R 18 are independently chosen from H, C 1-6 alkyl optionally substituted by 1-13 R 19 , C 2-6 alkenyl optionally substituted by 1-11 R 19 , C 2-6 alkynyl optionally substituted by 1-9 R 19 , C 6-11 aryl optionally substituted by 1-11 R 19 , C 7-16 arylalkyl optionally substituted by 1-19 R 19 , C 3-11 cycloalkyl optionally substituted by 1-21 R 19 , C 4-17 cycloalkylalkyl optionally substituted by 1-32 R 19 , 3-15 membered heterocycloalkyl optionally substituted by 1-28 R 19 , 4-21 membered heterocycloalkylalkyl optionally substituted by 1-40 R 19 , 5-15 membered heteroaryl optionally substituted by 1-15 R 19 , 6-21 membered heteroarylalkyl optionally substituted by 1-27 R 19 , halogen, —CN, —C(═O)R 20 , —C(═O)OR 20 , —C(═O)NR 22 R 23 , —C(═O)C(═O)R 20 , —C(═NR 25 )R 20 , —C(═NR 25 )NR 22 R 23 , —C(═NOH)NR 22 R 23 , —C(═NOR 26 )R 20 , —C(═NNR 22 R 23 )R 20 , —C(═NNR 24 C(═O)R 21 )R 20 , —C(═NNR 24 C(═O)OR 21 )R 20 , —C(═S)NR 22 R 23 , —NC, —NO 2 , —NR 22 R 23 , —NR 24 NR 22 R 23 , —N═NR 24 , —NR 24 OR 26 , —NR 24 C(═O)R 20 , —NR 24 C(═O)C(═O)R 20 , —NR 24 C(═O)OR 21 , —NR 24 C(═O)C(═O)OR 21 , —NR 24 C(═O)NR 22 R 23 , —NR 24 C(═O)NR 24 C(═O)R 20 , —NR 24 C(═O)NR 24 C(═O)OR 20 , —NR 24 C(═NR 25 )NR 22 R 23 , —NR 24 C(═O)C(═O)NR 22 R 23 , —NR 24 C(═S)R 20 , —NR 24 C(═S)OR 20 , —NR 24 C(═S)NR 22 R 23 , —NR 24 S(═O) 2 R 21 , —NR 24 S(═O) 2 NR 22 R 23 , —NR 24 P(═O)R 28 R 28 , —NR 24 P(═O)(NR 22 R 23 )(NR 22 R 23 ), —NR 24 P(═O)(OR 20 )(OR 20 ), —NR 24 P(═O)(SR 20 )(SR 20 ), —OR 20 , —OCN, —OC(═O)R 20 , —OC(═O)NR 22 R 23 , —OC(═O)OR 20 , —OC(═NR 25 )NR 22 R 23 , —OS(═O)R 20 , —OS(═O) 2 R 20 , —OS(═O) 2 OR 20 , —OS(═O) 2 NR 22 R 23 , —OP(═O)R 28 R 28 , —OP(═O)(NR 22 R 23 )(NR 22 R 23 ), —OP(═O)(OR 20 )(OR 20 ), —OP(═O)(SR 20 )(SR 20 ), —Si(R 24 ) 3 , —SCN, —S(═O) n R 20 , —S(═O) 2 OR 20 , —SO 3 R 27 , —S(═O) 2 NR 22 R 23 , —S(═O)NR 22 R 23 , —SP(═O)R 28 R 28 , —SP(═O)(NR 22 R 23 )(NR 22 R 23 ), —SP(═O)(OR 20 )(OR 20 ), —SP(═O)(SR 20 )(SR 20 ), —P(═O)R 28 R 28 , —P(═O)(NR 22 R 23 )(NR 22 R 23 ), P(═O)(OR 20 )(OR 20 ), or —P(═O)(SR 20 )(SR 20 ); alternatively, R 16 and R 17 can, together with the atoms linking them, form a 3-15 membered heterocycloalkyl optionally substituted by 1-28 R 19 or a 5-15 membered heteroaryl optionally substituted by 1-15 R 19 .

›Embodiment 219

The compound of any of Embodiments 1-215, wherein R 17 is chosen from H and C 1-6 alkyl; R 16 and R 18 are independently chosen from H, C 1-6 alkyl optionally substituted by 1-13 R 19 , C 2-6 alkenyl optionally substituted by 1-11 R 19 , C 2-6 alkynyl optionally substituted by 1-9 R 19 , C 6-11 aryl optionally substituted by 1-11 R 19 , C 7-16 arylalkyl optionally substituted by 1-19 R 19 , C 3-11 cycloalkyl optionally substituted by 1-21 R 19 , C 4-17 cycloalkylalkyl optionally substituted by 1-32 R 19 , 3-15 membered heterocycloalkyl optionally substituted by 1-28 R 19 , 4-21 membered heterocycloalkylalkyl optionally substituted by 1-40 R 19 , 5-15 membered heteroaryl optionally substituted by 1-15 R 19 , 6-21 membered heteroarylalkyl optionally substituted by 1-27 R 19 , halogen, —CN, —C(═O)R 20 , —C(═O)OR 20 , —C(═O)NR 22 R 23 , —C(═O)C(═O)R 20 , —C(═NR 25 )R 20 , —C(═NR 25 )NR 22 R 23 , —C(═NOH)NR 22 R 23 , —C(═NOR 26 )R 20 , —C(═NNR 22 R 23 )R 20 , —C(═NNR 24 C(═O)R 21 )R 20 , —C(═NNR 24 C(═O)OR 21) R 20 , —C(═S)NR 22 R 23 , —NC, —NO 2 , —NR 22 R 23 , —NR 24 NR 22 R 23 , —N═NR 24 , —NR 24 OR 26 , —NR 24 C(═O)R 20 , —NR 24 C(═O)C(═O)R 20 , —NR 24 C(═O)OR 21 , —NR 24 C(═O)C(═O)OR 21 , —NR 24 C(═O)NR 22 R 23 , —NR 24 C(═O)NR 24 C(═O)R 20 , —NR 24 C(═O)NR 24 C(═O)OR 20 , —NR 24 C(═NR 25 )NR 22 R 23 , —NR 24 C(═O)C(═O)NR 22 R 23 , —NR 24 C(═S)R 20 , —NR 24 C(═S)OR 20 , —NR 24 C(═S)NR 22 R 23 , —NR 24 S(═O) 2 R 21 , —NR 24 S(═O) 2 NR 22 R 23 , —NR 24 P(═O)R 28 R 28 , —NR 24 P(═O)(NR 22 R 23 )(NR 22 R 23 ), —NR 24 P(═O)(OR 20 )(OR 20 ), —NR 24 P(═O)(SR 20 )(SR 20 ), —OR 20 , —OCN, —OC(═O)R 20 , —OC(═O)NR 22 R 23 , —OC(═O)OR 20 , —OC(═NR 25 )NR 22 R 23 , —OS(═O)R 20 , —OS(═O) 2 R 20 , —OS(═O) 2 OR 20 , —OS(═O) 2 NR 22 R 23 , —OP(═O)R 28 R 28 , —OP(═O)(NR 22 R 23 )(NR 22 R 23 ), —OP(═O)(OR 20 )(OR 20 ), —OP(═O)(SR 20 )(SR 20 ), —Si(R 24 ) 3 , —SCN, —S(═O) n R 20 , —S(═O) 2 OR 20 , —SO 3 R 27 , —S(═O) 2 NR 22 R 23 , —S(═O)NR 22 R 23 , —SP(═O)R 28 R 28 , —SP(═O)(NR 22 R 23 )(NR 22 R 23 ), —SP(═O)(OR 20 )(OR 20 ), —SP(═O)(SR 20 )(SR 20 ), —P(═O)R 28 R 28 , —P(═O)(NR 22 R 23 )(NR 22 R 23 ), —P(═O)(OR 20 )(OR 20 ), or —P(═O)(SR 20 )(SR 20 ); alternatively, R 16 and R 17 can, together with the atoms linking them, form a 3-15 membered heterocycloalkyl optionally substituted by 1-28 R 19 or a 5-15 membered heteroaryl optionally substituted by 1-15 R 19 .

›Embodiment 220

The compound of any of Embodiments 1-215, wherein R 17 is chosen from H and C 1-6 alkyl; R 16 and R 18 are independently chosen from H, C 1-6 alkyl optionally substituted by 1-6 R 19 , C 2-6 alkenyl optionally substituted by 1-6 R 19 , C 2-6 alkynyl optionally substituted by 1-6 R 19 , C 6-10 aryl optionally substituted by 1-6 R 19 , C 7-11 arylalkyl optionally substituted by 1-6 R 19 , C 3-10 cycloalkyl optionally substituted by 1-6 R 19 , 3-10 membered heterocycloalkyl optionally substituted by 1-6 R 19 , 5-10 membered heteroaryl optionally substituted by 1-6 R 19 , halogen, —CN, —C(═O)R 20 , —C(═O)OR 20 , —C(═O)NR 22 R 23 , —C(═O)C(═O)R 20 , —NC, —NO 2 , —NR 22 R 23 , —NR 24 NR 22 R 23 , —N═NR 24 , —NR 24 OR 26 , —NR 24 C(═O)R 20 , —NR 24 C(═O)C(═O)R 20 , —NR 24 C(═O)OR 21 , —NR 24 C(═O)C(═O)OR 21 , —NR 24 C(═O)NR 22 R 23 , —NR 24 C(═O)NR 24 C(═O)R 20 , —NR 24 C(═O)NR 24 C(═O)OR 20 , —NR 24 C(═O)C(═O)NR 22 R 23 , —NR 24 S(═O) 2 R 21 , —NR 24 S(═O) 2 NR 22 R 23 , —OR 20 , —OCN, —OC(═O)R 20 , —OC(═O)NR 22 R 23 , —OC(═O)OR 20 , —OS(═O)R 20 , —OS(═O) 2 R 20 , —OS(═O) 2 OR 20 , —OS(═O) 2 NR 22 R 23 , —SCN, —S(═O) n R 20 , —S(═O) 2 OR 20 , —SO 3 R 27 , —S(═O) 2 NR 22 R 23 , and —S(═O)NR 22 R 23 ; alternatively, R 16 and R 17 can, together with the atoms linking them, form a 3-10 membered heterocycloalkyl optionally substituted by 1-6 R 19 or a 5-10 membered heteroaryl optionally substituted by 1-6 R 19 .

›Embodiment 221

The compound of any of Embodiments 1-215, wherein R 17 is chosen from H and C 1-6 alkyl; R 16 and R 18 are independently chosen from H, C 1-6 alkyl optionally substituted by 1-3 R 19 , C 2-6 alkenyl optionally substituted by 1-1 R 19 , C 2-6 alkynyl optionally substituted by 1-3 R 19 , C 6-10 aryl optionally substituted by 1-3 R 19 , C 7-11 arylalkyl optionally substituted by 1-3 R 19 , C 3-10 cycloalkyl optionally substituted by 1-3 R 19 , 3-10 membered heterocycloalkyl optionally substituted by 1-3 R 19 , 5-10 membered heteroaryl optionally substituted by 1-3 R 19 , halogen, —CN, —C(═O)R 20 , —C(═O)OR 20 , —C(═O)NR 22 R 23 , —C(═O)C(═O)R 20 , —NC, —NO 2 , —NR 22 R 23 , —NR 24 NR 22 R 23 , —N═NR 24 , —NR 24 OR 26 , —NR 24 C(═O)R 20 , —NR 24 C(═O)C(═O)R 20 , —NR 24 C(═O)OR 21 , —NR 24 C(═O)C(═O)OR 21 , —NR 24 C(═O)NR 22 R 23 , —NR 24 C(═O)NR 24 C(═O)R 20 , —NR 24 C(═O)NR 24 C(═O)OR 20 , —NR 24 C(═O)C(═O)NR 22 R 23 , —NR 24 S(═O) 2 R 21 , —NR 24 S(═O) 2 NR 22 R 23 , —OR 20 , —OCN, —OC(═O)R 20 , —OC(═O)NR 22 R 23 , —OC(═O)OR 20 , —OS(═O)R 20 , —OS(═O) 2 R 20 , —OS(═O) 2 OR 20 , —OS(═O) 2 NR 22 R 23 , —SCN, —S(═O) n R 20 , —S(═O) 2 OR 20 , —SO 3 R 27 , —S(═O) 2 NR 22 R 23 , and —S(═O)NR 22 R 23 ; alternatively, R 16 and R 17 can, together with the atoms linking them, form a 3-10 membered heterocycloalkyl optionally substituted by 1-3 R 19 or a 5-10 membered heteroaryl optionally substituted by 1-3 R 19 .

›Embodiment 222

The compound of any of Embodiments 1-215, wherein R 17 is chosen from H and C 1-6 alkyl; R 16 and R 18 are independently chosen from H, C 1-6 alkyl optionally substituted by 1-3 R 19 , C 6-10 aryl optionally substituted by 1-3 R 19 , C 7-11 arylalkyl optionally substituted by 1-3 R 19 , C 3-10 cycloalkyl optionally substituted by 1-3 R 19 , 3-10 membered heterocycloalkyl optionally substituted by 1-3 R 19 , 5-10 membered heteroaryl optionally substituted by 1-3 R 19 , halogen, —CN, —C(═O)R 20 , —C(═O)OR 20 , —C(═O)NR 22 R 23 , —NC, —NO 2 , —NR 22 R 23 , —NR 24 NR 22 R 23 , —NR 24 C(═O)R 20 , —NR 24 C(═O)OR 21 , —NR 24 C(═O)NR 22 R 23 , —NR 24 S(═O) 2 R 21 , —NR 24 S(═O) 2 NR 22 R 23 , —OR 20 , —OCN, —OC(═O)R 20 , —OC(═O)NR 22 R 23 , —OC(═O)OR 20 , —OS(═O)R 20 , —OS(═O) 2 R 20 , —OS(═O) 2 OR 20 , —OS(═O) 2 NR 22 R 23 , —SCN, —S(═O) n R 20 , —S(═O) 2 OR 20 , —SO 3 R 27 , —S(═O) 2 NR 22 R 23 , and —S(═O)NR 22 R 23 ; alternatively, R 16 and R 17 can, together with the atoms linking them, form a 3-10 membered heterocycloalkyl optionally substituted by 1-3 R 19 or a 5-10 membered heteroaryl optionally substituted by 1-3 R 19 .

›Embodiment 223

The compound of any of Embodiments 1-215, wherein R 17 is chosen from H and C 1-6 alkyl; R 16 and R 18 are independently chosen from H, C 1-6 alkyl optionally substituted by 1-3 R 19 , C 6-10 aryl optionally substituted by 1-3 R 19 , C 7-11 arylalkyl optionally substituted by 1-3 R 19 , C 3-10 cycloalkyl optionally substituted by 1-3 R 19 , 3-10 membered heterocycloalkyl optionally substituted by 1-3 R 19 , 5-10 membered heteroaryl optionally substituted by 1-3 R 19 , halogen, —CN, —C(═O)R 20 , —C(═O)OR 20 , —C(═O)NR 22 R 23 , —NC, —NO 2 , —NR 22 R 23 , —NR 24 C(═O)R 20 , —NR 24 C(═O)OR 21 , —NR 24 C(═O)NR 22 R 23 , —NR 24 S(═O) 2 R 21 , —OR 20 , —OCN, —OC(═O)R 20 , —OC(═O)NR 22 R 23 , —SCN, —S(═O) n R 2 , —S(═O) 2 OR 20 , —SO 3 R 27 , —S(═O) 2 NR 22 R 23 , and —S(═O)NR 22 R 23 ; alternatively, R 16 and R 17 can, together with the atoms linking them, form a 3-10 membered heterocycloalkyl optionally substituted by 1-3 R 19 or a 5-10 membered heteroaryl optionally substituted by 1-3 R 19 .

›Embodiment 224

The compound of any of Embodiments 1-215, wherein R 17 is chosen from H and C 1-6 alkyl; R 16 and R 18 are independently chosen from H, C 1-6 alkyl optionally substituted by 1-3 R 19 , C 6-10 aryl optionally substituted by 1-3 R 19 , C 7-11 arylalkyl optionally substituted by 1-3 R 19 , C 3-10 cycloalkyl optionally substituted by 1-3 R 19 , 3-10 membered heterocycloalkyl optionally substituted by 1-3 R 19 , 5-10 membered heteroaryl optionally substituted by 1-3 R 19 , halogen, —CN, —C(═O)R 20 , —C(═O)NR 22 R 23 , —NC, —NO 2 , —NR 22 R 23 , —NR 24 C(═O)R 20 , —NR 24 C(═O)OR 21 , —NR 24 S(═O) 2 R 21 , —OR 20 , —S(═O) n R 20 , and —S(═O) 2 NR 22 R 23 ; alternatively, R 16 and R 17 can, together with the atoms linking them, form a 3-10 membered heterocycloalkyl optionally substituted by 1-3 R 19 or a 5-10 membered heteroaryl optionally substituted by 1-3 R 19 .

›Embodiment 225

The compound of any of Embodiments 1-215, wherein R 17 is chosen from H and C 1-6 alkyl; R 16 and R 18 are independently chosen from H, C 1-6 alkyl optionally substituted by 1-3 R 19 , C 6-10 aryl optionally substituted by 1-3 R 19 , C 7-11 arylalkyl optionally substituted by 1-3 R 19 , C 3-10 cycloalkyl optionally substituted by 1-3 R 19 , 3-10 membered heterocycloalkyl optionally substituted by 1-3 R 19 , 5-10 membered heteroaryl optionally substituted by 1-3 R 19 , halogen, —CN, —C(═O)R 20 , —C(═O)NR 22 R 23 , —NO 2 , —NR 22 R 23 , —NR 24 C(═O)R 20 , —NR 24 S(═O) 2 R 21 , —OR 20 , —S(═O) n R 20 , and —S(═O) 2 NR 22 R 23 ; alternatively, R 16 and R 17 can, together with the atoms linking them, form a 3-10 membered heterocycloalkyl optionally substituted by 1-3 R 19 or a 5-10 membered heteroaryl optionally substituted by 1-3 R 19 .

›Embodiment 226

The compound of any of Embodiments 1-215, wherein R 17 is H; R 16 and R 18 are independently chosen from H, C 1-6 alkyl optionally substituted by 1-3 R 19 , C 6-10 aryl optionally substituted by 1-3 R 19 , C 7-11 arylalkyl optionally substituted by 1-3 R 19 , C 3-10 cycloalkyl optionally substituted by 1-3 R 19 , 3-10 membered heterocycloalkyl optionally substituted by 1-3 R 19 , 5-10 membered heteroaryl optionally substituted by 1-3 R 19 , halogen, —CN, —C(═O)R 20 , —C(═O)NR 22 R 23 , —NO 2 , —NR 22 R 23 , —NR 24 C(═O)R 20 , —NR 24 S(═O) 2 R 21 , —OR 20 , —S(═O) n R 20 , and —S(═O) 2 NR 22 R 23 ; alternatively, R 16 and R 17 can, together with the atoms linking them, form a 3-10 membered heterocycloalkyl optionally substituted by 1-3 R 19 or a 5-10 membered heteroaryl optionally substituted by 1-3 R 19 .

›Embodiment 227

The compound of any of Embodiments 1-215, wherein R 17 is chosen from H and C 1-6 alkyl; R 16 and R 18 are independently chosen from H, C 1-6 alkyl optionally substituted by 1-3 R 19 , C 6-10 aryl, C 7-11 arylalkyl, C 3-10 cycloalkyl, 3-10 membered heterocycloalkyl, 5-10 membered heteroaryl, halogen, —CN, —C(═O)R 20 , —C(═O)NR 22 R 23 , —NO 2 , —NR 22 R 23 , —NR 24 C(═O)R 20 , —NR 24 S(═O) 2 R 21 , —OR 20 , —S(═O) n R 20 , and —S(═O) 2 NR 22 R 23 ; alternatively, R 16 and R 17 can, together with the atoms linking them, form a 3-10 membered heterocycloalkyl or a 5-10 membered heteroaryl.

›Embodiment 228

The compound of any of Embodiments 1-215, wherein R 17 is H; R 16 and R 18 are independently chosen from H, C 1-6 alkyl optionally substituted by 1-3 R 19 , C 6-10 aryl, C 7-11 arylalkyl, C 3-10 cycloalkyl, 3-10 membered heterocycloalkyl, 5-10 membered heteroaryl, halogen, —CN, —C(═O)R 20 , —C(═O)NR 22 R 23 , —NO 2 , —NR 22 R 23 , —NR 24 C(═O)R 20 , —NR 24 S(═O) 2 R 21 , —OR 20 , —S(═O) n R 20 , and —S(═O) 2 NR 22 R 23 ; alternatively, R 16 and R 17 can, together with the atoms linking them, form a 3-10 membered heterocycloalkyl or a 5-10 membered heteroaryl.

›Embodiment 229

The compound of any of Embodiments 1-215, wherein R 17 is chosen from H and C 1-6 alkyl; R 16 and R 18 are independently chosen from H, C 1-6 alkyl optionally substituted by 1-3 R 19 , halogen, —CN, —C(═O)R 20 , —C(═O)NR 22 R 23 , —NO 2 , —NR 22 R 23 , —NR 24 C(═O)R 20 , —NR 24 S(═O) 2 R 21 , —OR 20 , —S(═O) n R 20 , and —S(═O) 2 NR 22 R 23 ; alternatively, R 16 and R 17 can, together with the atoms linking them, form a 3-10 membered heterocycloalkyl or a 5-10 membered heteroaryl.

›Embodiment 230

The compound of any of Embodiments 1-215, wherein R 17 is H; R 16 and R 18 are independently chosen from H, C 1-6 alkyl optionally substituted by 1-3 R 19 , halogen, —CN, —C(═O)R 20 , —C(═O)NR 22 R 23 , —NO 2 , —NR 22 R 23 , —NR 24 C(═O)R 20 , —NR 24 S(═O) 2 R 21 , —OR 20 , —S(═O) n R 20 , and —S(═O) 2 NR 22 R 23 ; alternatively, R 16 and R 17 can, together with the atoms linking them, form a 3-10 membered heterocycloalkyl or a 5-10 membered heteroaryl.

›Embodiment 231

The compound of any of Embodiments 1-215, wherein R 17 is chosen from H and C 1-6 alkyl; R 16 and R 18 are independently chosen from H, C 1-6 alkyl optionally substituted by 1-3 R 19 , halogen, —CN, —C(═O)R 20 , —C(═O)NR 22 R 23 , —NO 2 , —NR 22 R 23 , —NR 24 C(═O)R 20 , —NR 24 S(═O) 2 R 21 , —OR 20 , —S(═O) n R 20 , and —S(═O) 2 NR 22 R 23 .

›Embodiment 232

The compound of any of Embodiments 1-215, wherein R 17 is H; R 16 and R 18 are independently chosen from H, C 1-6 alkyl optionally substituted by 1-3 R 19 , halogen, —CN, —C(═O)R 20 , —C(═O)NR 22 R 23 , —NO 2 , —NR 22 R 23 , —NR 24 C(═O)R 20 , —NR 24 S(═O) 2 R 21 , —OR 20 , —S(═O) n R 20 , and —S(═O) 2 NR 22 R 23 .

›Embodiment 233

The compound of any of Embodiments 1-215, wherein R 17 is chosen from H and C 1-6 alkyl; R 16 and R 18 are independently chosen from H, C 1-6 alkyl optionally substituted by 1-3 R 19 , halogen, and —OR 20 .

›Embodiment 234

The compound of any of Embodiments 1-215, wherein R 17 is H; R 16 and R 18 are independently chosen from H, C 1-6 alkyl optionally substituted by 1-3 R 19 , halogen, and —OR 20 .

›Embodiment 235

The compound of any of Embodiments 1-215, wherein R 17 is H; R 16 and R 18 are independently chosen from H, C 1-6 alkyl optionally substituted by 1-3 R 19 , and halogen.

›Embodiment 236

The compound of any of Embodiments 1-215, wherein R 17 is H; R 16 and R 18 are independently chosen from H, C 1-6 alkyl, and halogen.

›Embodiment 237

The compound of any of Embodiments 1-215, wherein R 16 , R 17 and R 18 are independently chosen from H and C 1-6 alkyl.

›Embodiment 238

The compound of any of Embodiments 1-215, wherein R 17 is chosen from H, C 1-6 alkyl optionally substituted by 1-13 R 19 , C 2-6 alkenyl optionally substituted by 1-11 R 19 , C 2-6 alkynyl optionally substituted by 1-9 R 19 , C 6-11 aryl optionally substituted by 1-11 R 19 , C 7-16 arylalkyl optionally substituted by 1-19 R 19 , C 3-11 cycloalkyl optionally substituted by 1-21 R 19 , C 4-17 cycloalkylalkyl optionally substituted by 1-32 R 19 , 3-15 membered heterocycloalkyl optionally substituted by 1-28 R 19 , 4-21 membered heterocycloalkylalkyl optionally substituted by 1-40 R 19 , 5-15 membered heteroaryl optionally substituted by 1-15 R 19 , 6-21 membered heteroarylalkyl optionally substituted by 1-27 R 19 , and —OR 20 ; R 16 and R 18 are independently chosen from H, C 1-6 alkyl optionally substituted by 1-13 R 19 , C 2-6 alkenyl optionally substituted by 1-11 R 19 , C 2-6 alkynyl optionally substituted by 1-9 R 19 , C 6-11 aryl optionally substituted by 1-11 R 19 , C 7-16 arylalkyl optionally substituted by 1-19 R 19 , C 3-11 cycloalkyl optionally substituted by 1-21 R 19 , C 4-17 cycloalkylalkyl optionally substituted by 1-32 R 19 , 3-15 membered heterocycloalkyl optionally substituted by 1-28 R 19 , 4-21 membered heterocycloalkylalkyl optionally substituted by 1-40 R 19 , 5-15 membered heteroaryl optionally substituted by 1-15 R 19 , 6-21 membered heteroarylalkyl optionally substituted by 1-27 R 19 , halogen, —CN, —C(═O)R 20 , —C(═O)OR 20 , —C(═O)NR 22 R 23 , —NO 2 , —NR 22 R 23 , and —OR 20 ; alternatively, R 16 and R 17 can, together with the atoms linking them, form a 3-15 membered heterocycloalkyl optionally substituted by 1-28 R 19 or a 5-15 membered heteroaryl optionally substituted by 1-15 R 19 .

›Embodiment 239

The compound of any of Embodiments 1-215, wherein R 17 is chosen from H, C 1-6 alkyl optionally substituted by 1-13 R 19 , C 2-6 alkenyl optionally substituted by 1-11 R 19 , C 2-6 alkynyl optionally substituted by 1-9 R 19 , C 6-11 aryl optionally substituted by 1-11 R 19 , C 7-16 arylalkyl optionally substituted by 1-19 R 19 , C 3-11 cycloalkyl optionally substituted by 1-21 R 19 , C 4-17 cycloalkylalkyl optionally substituted by 1-32 R 19 , 3-15 membered heterocycloalkyl optionally substituted by 1-28 R 19 , 4-21 membered heterocycloalkylalkyl optionally substituted by 1-40 R 19 , 5-15 membered heteroaryl optionally substituted by 1-15 R 19 , 6-21 membered heteroarylalkyl optionally substituted by 1-27 R 19 , and —OR 20 ; R 16 and R 18 are independently chosen from H, C 1-6 alkyl optionally substituted by 1-13 R 19 , C 2-6 alkenyl optionally substituted by 1-11 R 19 , C 2-6 alkynyl optionally substituted by 1-9 R 19 , C 6-11 aryl optionally substituted by 1-11 R 19 , C 7-16 arylalkyl optionally substituted by 1-19 R 19 , C 3-11 cycloalkyl optionally substituted by 1-21 R 19 , C 4-17 cycloalkylalkyl optionally substituted by 1-32 R 19 , 3-15 membered heterocycloalkyl optionally substituted by 1-28 R 19 , 4-21 membered heterocycloalkylalkyl optionally substituted by 1-40 R 19 , 5-15 membered heteroaryl optionally substituted by 1-15 R 19 , 6-21 membered heteroarylalkyl optionally substituted by 1-27 R 19 , halogen, —CN, —C(═O)NR 22 R 23 , —NO 2 , —NR 22 R 23 , and —OR 20 ; alternatively, R 16 and R 17 can, together with the atoms linking them, form a 3-15 membered heterocycloalkyl optionally substituted by 1-28 R 19 or a 5-15 membered heteroaryl optionally substituted by 1-15 R 19 .

›Embodiment 240

The compound of any of Embodiments 1-215, wherein R 17 is H; R 16 and R 18 are independently chosen from H and C 1-6 alkyl optionally substituted by 1-3 R 19 .

›Embodiment 241

The compound of any of Embodiments 1-215, wherein R 17 is H; R 16 and R 18 are independently chosen from H and C 1-6 alkyl.

›Embodiment 242

The compound of any of Embodiments 1-215, wherein R 17 is H; R 16 and R 18 are independently chosen from H and C 1-4 alkyl.

›Embodiment 243

The compound of any of Embodiments 1-215, wherein R 17 is H; R 16 and R 18 are independently chosen from H and C 1-3 alkyl.

›Embodiment 244

The compound of any of Embodiments 1-215, wherein R 17 is H; R 16 and R 18 are independently chosen from H and methyl.

›Embodiment 245

The compound of any of Embodiments 1-215, wherein R 16 , R 17 and R 18 are H.

›Embodiment 246

The compound of any of Embodiments 1-240, wherein R 19 at each occurrence is independently chosen from C 1-6 alkyl optionally substituted by 1-13 R 39 , C 2-6 alkenyl optionally substituted by 1-11 R 39 , C 2-6 alkynyl optionally substituted by 1-9 R 39 , C 6-11 aryl optionally substituted by 1-11 R 39 , C 7-16 arylalkyl optionally substituted by 1-19 R 39 , C 3-11 cycloalkyl optionally substituted by 1-21 R 39 , C 4-17 cycloalkylalkyl optionally substituted by 1-32 R 39 , 3-15 membered heterocycloalkyl optionally substituted by 1-28 R 39 , 4-21 membered heterocycloalkylalkyl optionally substituted by 1-40 R 39 , 5-15 membered heteroaryl optionally substituted by 1-15 R 39 , 6-21 membered heteroarylalkyl optionally substituted by 1-27 R 39 halogen, —CN, —C(═O)R 30 , —C(═O)OR 30 , —C(═O)NR 32 R 33 , —C(═O)C(═O)R 30 , —C(═NR 35 )R 30 , —C(═NR 35 )NR 32 R 33 , —C(═NOH)NR 32 R 33 , —C(═NOR 36 )R 30 , —C(═NNR 32 R 33 )R 30 , —C(═NNR 34 C(═O)R 31 )R 30 , —C(═NNR 34 C(═O)OR 31 )R 30 , —C(═S)NR 32 R 33 , —NC, —NO 2 , —NR 32 R 33 , —NR 34 NR 32 R 33 , —N═NR 34 , ═NR 30 , ═NOR 30 , —NR 34 OR 36 , —NR 34 C(═O)R 30 , —NR 34 C(═O)C(═O)R 30 , —NR 34 C(═O)OR 31 , —NR 34 C(═O)C(═O)OR 31 , —NR 34 C(═O)NR 32 R 33 , —NR 34 C(═O)NR 34 C(═O)R 30 , —NR 34 C(═O)NR 34 C(═O)OR 30 , —NR 34 C(═NR 35 )NR 32 R 33 , —NR 34 C(═O)C(═O)NR 32 R 33 , —NR 34 C(═S)R 30 , —NR 34 C(═S)OR 30 , —NR 34 C(═S)NR 32 R 33 , —NR 34 S(═O) 2 R 31 , —NR 34 S(═O) 2 NR 32 R 33 , —NR 34 P(═O)R 38 R 38 , —NR 34 P(═O)(NR 32 R 33 )(NR 32 R 33 ), —NR 34 P(═O)(OR 30 )(OR 30 ), —NR 34 P(═O)(SR 30 )(SR 30 ), —OR 30 , ═O, —OCN, —OC(═O)R 30 , —OC(═O)NR 32 R 33 , —OC(═O)OR 30 , —OC(═NR 35 )NR 32 R 33 , —OS(═O)R 30 , —OS(═O) 2 R 30 , —OS(═O) 2 OR 30 , —OS(═O) 2 NR 32 R 33 , —OP(═O)R 38 R 38 , —OP(═O)(NR 32 R 33 )(NR 32 R 33 ), —OP(═O)(OR 30 )(OR 30 ), —OP(═O)(SR 30 )(SR 30 ), —Si(R 34 ) 3 , —SCN, ═S, —S(═O) n R 30 , —S(═O) 2 OR 30 , —SO 3 R 37 , —S(═O) 2 NR 32 R 33 , —S(═O)NR 32 R 33 , —SP(═O)R 38 R 38 , —SP(═O)(NR 32 R 33 )(NR 32 R 33 ), —SP(═O)(OR 30 )(OR 30 ), —SP(═O)(SR 30 )(SR 30 ), —P(═O)R 38 R 38 , —P(═O)(NR 32 R 33 )(NR 32 R 33 ), —P(═O)(OR 30 )(OR 30 ), and —P(═O)(SR 30 )(SR 30 ).

›Embodiment 247

The compound of any of Embodiments 1-240, wherein R 19 at each occurrence is independently chosen from C 1-6 alkyl optionally substituted by 1-6 R 39 , C 2-6 alkenyl optionally substituted by 1-6 R 39 , C 2-6 alkynyl optionally substituted by 1-6 R 39 , C 6-11 aryl optionally substituted by 1-6 R 39 , C 7-16 arylalkyl optionally substituted by 1-6 R 39 , C 3-11 cycloalkyl optionally substituted by 1-6 R 39 , C 4-17 cycloalkylalkyl optionally substituted by 1-6 R 39 , 3-15 membered heterocycloalkyl optionally substituted by 1-6 R 39 , 4-21 membered heterocycloalkylalkyl optionally substituted by 1-6 R 39 , 5-15 membered heteroaryl optionally substituted by 1-6 R 39 , 6-21 membered heteroarylalkyl optionally substituted by 1-6 R 39 halogen, —CN, —C(═O)R 30 , —C(═O)OR 30 , —C(═O)NR 32 R 33 , —C(═O)C(═O)R 30 , —C(═NR 35 )R 30 , —C(═NR 35 )NR 32 R 33 , —C(═NOH)NR 32 R 33 , —C(═NOR 36 )R 30 , —C(═NNR 32 R 33 )R 30 , —C(═NNR 34 C(═O)R 31 )R 30 , —C(═NNR 34 C(═O)OR 31 )R 30 , —C(═S)NR 32 R 33 , —NC, —NO 2 , —NR 32 R 33 , —NR 34 NR 32 R 33 , —N═NR 34 , ═NR 30 , ═NOR 30 , —NR 34 OR 36 , —NR 34 C(═O)R 30 , —NR 34 C(═O)C(═O)R 30 , —NR 34 C(═O)OR 31 , —NR 34 C(═O)C(═O)OR 31 , —NR 34 C(═O)NR 32 R 33 , —NR 34 C(═O)NR 34 C(═O)R 30 , —NR 34 C(═O)NR 34 C(═O)OR 30 , —NR 34 C(═NR 35 )NR 32 R 33 , —NR 34 C(═O)C(═O)NR 32 R 33 , —NR 34 C(═S)R 30 , —NR 34 C(═S)OR 30 , —NR 34 C(═S)NR 32 R 33 , NR 34 S(═O) 2 R 31 , —NR 34 S(═O) 2 NR 32 R 33 , —NR 34 P(═O)R 38 R 38 , —NR 34 P(═O)(NR 32 R 33 )(NR 32 R 33 ), —NR 34 P(═O)(OR 30 )(OR 30 ), —NR 34 P(═O)(SR 30 )(SR 30 ), —OR 30 , ═O, —OCN, —OC(═O)R 30 , —OC(═O)NR 32 R 33 , —OC(═O)OR 30 , —OC(═NR 35 )NR 32 R 33 , —OS(═O)R 30 , —OS(═O) 2 R 30 , —OS(═O) 2 OR 30 , —OS(═O) 2 NR 32 R 33 , —OP(═O)R 38 R 38 , —OP(═O)(NR 32 R 33 )(NR 32 R 33 ), —OP(═O)(OR 30 )(OR 30 ), —OP(═O)(SR 30 )(SR 30 ), —Si(R 34 ) 3 , —SCN, ═S, —S(═O) n R 30 , —S(═O) 2 OR 30 , —SO 3 R 37 , —S(═O) 2 NR 32 R 33 , —S(═O)NR 32 R 33 , —SP(═O)R 38 R 38 , —SP(═O)(NR 32 R 33 )(NR 32 R 33 ), —SP(═O)(OR 30 )(OR 30 ), —SP(═O)(SR 30 )(SR 30 ), —P(═O)R 38 R 38 , —P(═O)(NR 32 R 33 )(NR 32 R 33 ), —P(═O)(OR 30 )(OR 30 ), and —P(═O)(SR 30 )(SR 30 ).

›Embodiment 248

The compound of any of Embodiments 1-240, wherein R 19 at each occurrence is independently chosen from C 1-6 alkyl optionally substituted by 1-6 R 39 , C 2-6 alkenyl optionally substituted by 1-6 R 39 , C 2-6 alkynyl optionally substituted by 1-6 R 39 , C 6-11 aryl optionally substituted by 1-6 R 39 , C 7-16 arylalkyl optionally substituted by 1-6 R 39 , C 3-11 cycloalkyl optionally substituted by 1-6 R 39 , C 4-17 cycloalkylalkyl optionally substituted by 1-6 R 39 , 3-15 membered heterocycloalkyl optionally substituted by 1-6 R 39 , 4-21 membered heterocycloalkylalkyl optionally substituted by 1-6 R 39 , 5-15 membered heteroaryl optionally substituted by 1-6 R 39 , 6-21 membered heteroarylalkyl optionally substituted by 1-6 R 39 halogen, —CN, —C(═O)R 30 , —C(═O)OR 30 , —C(═O)NR 32 R 33 , —C(═O)C(═O)R 30 , —NC, —NO 2 , —NR 32 R 33 , —NR 34 NR 32 R 33 , —NR 34 OR 36 , —NR 34 C(═O)R 30 , —NR 34 C(═O)C(═O)R 30 , —NR 34 C(═O)OR 31 , —NR 34 C(═O)C(═O)OR 31 , —NR 34 C(═O)NR 32 R 33 , —NR 34 C(═O)NR 34 C(═O)R 30 , —NR 34 C(═O)NR 34 C(═O)OR 30 , —NR 34 C(═NR 35 )NR 32 R 33 , —NR 34 C(═O)C(═O)NR 32 R 33 , —NR 34 S(═O) 2 R 31 , —NR 34 S(═O) 2 NR 32 R 33 , —OR 30 , ═O, —OCN, —OC(═O)R 30 , —OC(═O)NR 32 R 33 , —OC(═O)OR 30 , —OC(═NR 35 )NR 32 R 33 , —Si(R 34 ) 3 , —SCN, ═S, —S(═O) n R 30 , —S(═O) 2 OR 30 , —SO 3 R 37 , —S(═O) 2 NR 32 R 33 , —S(═O)NR 32 R 33 , —P(═O)R 38 R 38 , —P(═O)(NR 32 R 33 )(NR 32 R 33 ), —P(═O)(OR 30 )(OR 30 ), and —P(═O)(SR 30 )(SR 30 ).

›Embodiment 249

The compound of any of Embodiments 1-240, wherein R 19 at each occurrence is independently chosen from C 1-6 alkyl optionally substituted by 1-3 R 39 , C 2-6 alkenyl optionally substituted by 1-3 R 39 , C 2-6 alkynyl optionally substituted by 1-3 R 39 , C 6-11 aryl optionally substituted by 1-3 R 39 , C 7-16 arylalkyl optionally substituted by 1-3 R 39 , C 3-11 cycloalkyl optionally substituted by 1-3 R 39 , C 4-17 cycloalkylalkyl optionally substituted by 1-3 R 39 , 3-15 membered heterocycloalkyl optionally substituted by 1-3 R 39 , 4-21 membered heterocycloalkylalkyl optionally substituted by 1-3 R 39 , 5-15 membered heteroaryl optionally substituted by 1-3 R 39 , 6-21 membered heteroarylalkyl optionally substituted by 1-3 R 39 halogen, —CN, —C(═O)R 30 , —C(═O)OR 30 , —C(═O)NR 32 R 33 , —C(═O)C(═O)R 30 , —NC, —NO 2 , —NR 32 R 33 , —NR 34 NR 32 R 33 , —NR 34 OR 36 , —NR 34 C(═O)R 30 , —NR 34 C(═O)C(═O)R 30 , —NR 34 C(═O)OR 31 , —NR 34 C(═O)C(═O)OR 31 , —NR 34 C(═O)NR 32 R 33 , —NR 34 C(═O)NR 34 C(═O)R 30 , —NR 34 C(═O)NR 34 C(═O)OR 30 , —NR 34 C(═NR 35 )NR 32 R 33 , —NR 34 C(═O)C(═O)NR 32 R 33 , —NR 34 S(═O) 2 R 31 , —NR 34 S(═O) 2 NR 32 R 33 , —OR 30 , ═O, —OCN, —OC(═O)R 30 , —OC(═O)NR 32 R 33 , —OC(═O)OR 30 , —OC(═NR 35 )NR 32 R 33 , —Si(R 34 ) 3 , —SCN, ═S, —S(═O) n R 30 , —S(═O) 2 OR 30 , —SO 3 R 37 , —S(═O) 2 NR 32 R 33 , —S(═O)NR 32 R 33 , —P(═O)R 38 R 38 , —P(═O)(NR 32 R 33 )(NR 32 R 33 ), —P(═O)(OR 30 )(OR 30 ), and —P(═O)(SR 30 )(SR 30 ).

›Embodiment 250

The compound of any of Embodiments 1-240, wherein R 19 at each occurrence is independently chosen from C 1-6 alkyl optionally substituted by 1-3 R 39 , C 2-6 alkenyl optionally substituted by 1-3 R 39 , C 2-6 alkynyl optionally substituted by 1-3 R 39 , C 6-10 aryl optionally substituted by 1-3 R 39 , C 7-11 arylalkyl optionally substituted by 1-3 R 39 , C 3-10 cycloalkyl optionally substituted by 1-3 R 39 , 3-10 membered heterocycloalkyl optionally substituted by 1-3 R 39 , 5-10 membered heteroaryl optionally substituted by 1-3 R 39 , halogen, —CN, —C(═O)R 30 , —C(═O)OR 30 , —C(═O)NR 32 R 33 , —C(═O)C(═O)R 30 , —NC, —NO 2 , —NR 32 R 33 , —NR 34 NR 32 R 33 , —NR 34 OR 36 , —NR 34 C(═O)R 30 , —NR 34 C(═O)C(═O)R 30 , —NR 34 C(═O)OR 31 , —NR 34 C(═O)C(═O)OR 31 , —NR 34 C(═O)NR 32 R 33 , —NR 34 C(═O)NR 34 C(═O)R 30 , —NR 34 C(═O)NR 34 C(═O)OR 30 , —NR 34 C(═NR 35 )NR 32 R 33 , —NR 34 C(═O)C(═O)NR 32 R 33 , —NR 34 S(═O) 2 R 31 , —NR 34 S(═O) 2 NR 32 R 33 , —OR 30 , ═O, —OCN, —OC(═O)R 30 , —OC(═O)NR 32 R 33 , —OC(═O)OR 30 , —OC(═NR 35 )NR 32 R 33 , —Si(R 34 ) 3 , —SCN, ═S, —S(═O) n R 30 , —S(═O) 2 OR 30 , —SO 3 R 37 , —S(═O) 2 NR 32 R 33 , —S(═O)NR 32 R 33 , —P(═O)R 38 R 38 , —P(═O)(NR 32 R 33 )(NR 32 R 33 ), —P(═O)(OR 30 )(OR 30 ), and —P(═O)(SR 30 )(SR 30 ).

›Embodiment 251

The compound of any of Embodiments 1-240, wherein R 19 at each occurrence is independently chosen from C 1-6 alkyl optionally substituted by 1-3 R 39 , C 2-6 alkenyl optionally substituted by 1-3 R 39 , C 2-6 alkynyl optionally substituted by 1-3 R 39 , C 6-10 aryl optionally substituted by 1-3 R 39 , C 7-11 arylalkyl optionally substituted by 1-3 R 39 , C 3-10 cycloalkyl optionally substituted by 1-3 R 39 , 3-10 membered heterocycloalkyl optionally substituted by 1-3 R 39 , 5-10 membered heteroaryl optionally substituted by 1-3 R 39 , halogen, —CN, —C(═O)R 30 , —C(═O)OR 30 , —C(═O)NR 32 R 33 , —NO 2 , —NR 32 R 33 , —NR 34 C(═O)R 30 , —NR 34 C(═O)OR 31 , —NR 34 C(═O)NR 32 R 33 , —NR 34 S(═O) 2 R 31 , —NR 34 S(═O) 2 NR 32 R 33 , —OR 30 , ═O, —OC(═O)R 30 , —OC(═O)NR 32 R 33 , —Si(R 34 ) 3 , ═S, —S(═O) n R 30 , —S(═O) 2 OR 30 , —SO 3 R 37 , —S(═O) 2 NR 32 R 33 , —S(═O)NR 32 R 33 , —P(═O)R 38 R 38 , —P(═O)(NR 32 R 33 )(NR 32 R 33 ), —P(═O)(OR 30 )(OR 30 ), and —P(═O)(SR 30 )(SR 30 ).

›Embodiment 252

The compound of any of Embodiments 1-240, wherein R 19 at each occurrence is independently chosen from C 1-6 alkyl optionally substituted by 1-3 R 39 , C 2-6 alkenyl optionally substituted by 1-3 R 39 , C 2-6 alkynyl optionally substituted by 1-3 R 39 , C 6-10 aryl optionally substituted by 1-3 R 39 , C 7-11 arylalkyl optionally substituted by 1-3 R 39 , C 3-10 cycloalkyl optionally substituted by 1-3 R 39 , 3-10 membered heterocycloalkyl optionally substituted by 1-3 R 39 , 5-10 membered heteroaryl optionally substituted by 1-3 R 39 , halogen, —CN, —C(═O)R 30 , —C(═O)OR 30 , —C(═O)NR 32 R 33 , —NO 2 , —NR 32 R 33 , —NR 34 C(═O)R 30 , —NR 34 C(═O)OR 31 , —NR 34 C(═O)NR 32 R 33 , —NR 34 S(═O) 2 R 31 , —NR 34 S(═O) 2 NR 32 R 33 , —OR 30 , ═O, —OC(═O)R 30 , —OC(═O)NR 32 R 33 , —Si(R 34 ) 3 , ═S, —S(═O) n R 30 , —S(═O) 2 NR 32 R 33 , and —S(═O)NR 32 R 33 .

›Embodiment 253

The compound of any of Embodiments 1-240, wherein R 19 at each occurrence is independently chosen from C 1-6 alkyl optionally substituted by 1-3 R 39 , C 2-6 alkenyl optionally substituted by 1-3 R 39 , C 2-6 alkynyl optionally substituted by 1-3 R 39 , C 6-10 aryl optionally substituted by 1-3 R 39 , C 7-11 arylalkyl optionally substituted by 1-3 R 39 , C 3-10 cycloalkyl optionally substituted by 1-3 R 39 , 3-10 membered heterocycloalkyl optionally substituted by 1-3 R 39 , 5-10 membered heteroaryl optionally substituted by 1-3 R 39 , halogen, —CN, —C(═O)R 30 , —C(═O)OR 30 , —C(═O)NR 32 R 33 , —NO 2 , —NR 32 R 33 , —NR 34 C(═O)R 30 , —NR 34 C(═O)NR 32 R 33 , —NR 34 S(═O) 2 R 31 , —NR 34 S(═O) 2 NR 32 R 33 , —OR 30 , ═O, —OC(═O)R 30 , —OC(═O)NR 32 R 33 , —Si(R 34 ) 3 , ═S, —S(═O) n R 30 , and —S(═O) 2 NR 32 R 33 .

›Embodiment 254

The compound of any of Embodiments 1-240, wherein R 19 at each occurrence is independently chosen from C 1-6 alkyl optionally substituted by 1-3 R 39 , C 2-6 alkenyl optionally substituted by 1-3 R 39 , C 2-6 alkynyl optionally substituted by 1-3 R 39 , C 6-10 aryl optionally substituted by 1-3 R 39 , C 7-11 arylalkyl optionally substituted by 1-3 R 39 , C 3-6 cycloalkyl optionally substituted by 1-3 R 39 , 3-6 membered heterocycloalkyl optionally substituted by 1-3 R 39 , 5-6 membered heteroaryl optionally substituted by 1-3 R 39 , halogen, —CN, —C(═O)R 30 , —C(═O)OR 30 , —C(═O)NR 32 R 33 , —NO 2 , —NR 32 R 33 , —NR 34 C(═O)R 30 , —NR 34 C(═O)NR 32 R 33 , —NR 34 S(═O) 2 R 31 , —NR 34 S(═O) 2 NR 32 R 33 , —OR 30 , ═O, —OC(═O)R 30 , —OC(═O)NR 32 R 33 , —Si(R 34 ) 3 , ═S, —S(═O) n R 30 , and —S(═O) 2 NR 32 R 33 .

›Embodiment 255

The compound of any of Embodiments 1-240, wherein R 19 at each occurrence is independently chosen from C 1-6 alkyl optionally substituted by 1-3 R 39 , C 6-10 aryl optionally substituted by 1-3 R 39 , C 7-11 arylalkyl optionally substituted by 1-3 R 39 , C 3-6 cycloalkyl optionally substituted by 1-3 R 39 , 3-6 membered heterocycloalkyl optionally substituted by 1-3 R 39 , 5-6 membered heteroaryl optionally substituted by 1-3 R 39 , halogen, —CN, —C(═O)R 30 , —C(═O)OR 30 , —C(═O)NR 32 R 33 , —NO 2 , —NR 32 R 33 , —NR 34 C(═O)R 30 , —NR 34 S(═O) 2 R 31 , —OR 30 , ═O, —OC(═O)R 30 , —OC(═O)NR 32 R 33 , —Si(R 34 ) 3 , —S(═O) n R 30 , and —S(═O) 2 NR 32 R 33 .

›Embodiment 256

The compound of any of Embodiments 1-240, wherein R 19 at each occurrence is independently chosen from C 1-6 alkyl optionally substituted by 1-3 R 39 , C 6-10 aryl optionally substituted by 1-3 R 39 , C 7-11 arylalkyl optionally substituted by 1-3 R 39 , C 3-6 cycloalkyl optionally substituted by 1-3 R 39 , 3-6 membered heterocycloalkyl optionally substituted by 1-3 R 39 , 5-6 membered heteroaryl optionally substituted by 1-3 R 39 , halogen, —CN, —C(═O)R 30 , —C(═O)NR 32 R 33 , —NR 32 R 33 , —NR 34 C(═O)R 30 , —NR 34 S(═O) 2 R 31 , —OR 30 , ═O, —S(═O) n R 30 , and —S(═O) 2 NR 32 R 33 .

›Embodiment 257

The compound of any of Embodiments 1-240, wherein R 19 at each occurrence is independently chosen from C 1-6 alkyl optionally substituted by 1-3 R 39 , C 6-10 aryl optionally substituted by 1-3 R 39 , C 7-11 arylalkyl optionally substituted by 1-3 R 39 , C 3-6 cycloalkyl optionally substituted by 1-3 R 39 , 3-6 membered heterocycloalkyl optionally substituted by 1-3 R 39 , 5-6 membered heteroaryl optionally substituted by 1-3 R 39 , halogen, —CN, —C(═O)R 30 , —C(═O)NR 32 R 33 , —NR 32 R 33 , —NR 34 C(═O)R 30 , —OR 30 , and ═O.

›Embodiment 258

The compound of any of Embodiments 1-240, wherein R 19 at each occurrence is independently chosen from C 1-6 alkyl, C 6-10 aryl, C 7-11 arylalkyl, C 3-6 cycloalkyl, 3-6 membered heterocycloalkyl, 5-6 membered heteroaryl, halogen, —CN, —C(═O)R 30 , —C(═O)NR 32 R 33 , —NR 32 R 33 , —NR 34 C(═O)R 30 , —OR 30 , and ═O.

›Embodiment 259

The compound of any of Embodiments 1-240, wherein R 19 at each occurrence is independently chosen from C 1-6 alkyl, C 6-10 aryl, C 7-11 arylalkyl, C 3-6 cycloalkyl, 3-6 membered heterocycloalkyl, 5-6 membered heteroaryl, halogen, —C(═O)R 30 , —C(═O)OR 30 , —C(═O)NR 32 R 33 , —NR 32 R 33 , and —OR 30 .

›Embodiment 260

The compound of any of Embodiments 1-240, wherein R 19 at each occurrence is independently chosen from C 1-6 alkyl optionally substituted by 1-13 R 39 , C 2-6 alkenyl optionally substituted by 1-11 R 39 , C 2-6 alkynyl optionally substituted by 1-9 R 39 , C 6-11 aryl optionally substituted by 1-11 R 39 , C 7-16 arylalkyl optionally substituted by 1-19 R 39 , C 3-11 cycloalkyl optionally substituted by 1-21 R 39 , C 4-17 cycloalkylalkyl optionally substituted by 1-32 R 39 , 3-15 membered heterocycloalkyl optionally substituted by 1-28 R 39 , 4-21 membered heterocycloalkylalkyl optionally substituted by 1-40 R 39 , 5-15 membered heteroaryl optionally substituted by 1-15 R 39 , 6-21 membered heteroarylalkyl optionally substituted by 1-27 R 39 halogen, —CN, —C(═O)NR 32 R 33 , —NO 2 , —NR 32 R 33 , and —OR 30 .

›Embodiment 261

The compound of any of Embodiments 1-240, wherein R 19 at each occurrence is independently chosen from C 1-6 alkyl optionally substituted by 1-13 R 39 .

›Embodiment 262

The compound of any of Embodiments 1-240, wherein R 19 at each occurrence is independently chosen from C 1-6 alkyl optionally substituted by 1-3 R 39 , C 6-10 aryl optionally substituted by 1-3 R 39 , C 3-6 cycloalkyl optionally substituted by 1-3 R 39 , 3-6 membered heterocycloalkyl optionally substituted by 1-3 R 39 , 5-6 membered heteroaryl optionally substituted by 1-3 R 39 , halogen, —C(═O)OR 30 , —NR 32 R 33 , and —OR 30 .

›Embodiment 263

The compound of any of Embodiments 1-240, wherein R 19 at each occurrence is independently chosen from C 1-6 alkyl optionally substituted by 1-3 R 39 , phenyl optionally substituted by 1-3 R 39 , C 3-6 cycloalkyl optionally substituted by 1-3 R 39 , 3-6 membered heterocycloalkyl optionally substituted by 1-3 R 39 , 5-6 membered heteroaryl optionally substituted by 1-3 R 39 , halogen, —C(═O)OR 30 , —NR 32 R 33 , and —OR 30 .

›Embodiment 264

The compound of any of Embodiments 1-240, wherein R 19 at each occurrence is independently chosen from C 1-6 alkyl, phenyl optionally substituted by 1-3 R 39 , C 3-6 cycloalkyl, 3-6 membered heterocycloalkyl optionally substituted by 1-3 R 39 , 5-6 membered heteroaryl, halogen, —C(═O)OR 30 , —NR 32 R 33 , and —OR 30 .

›Embodiment 265

The compound of any of Embodiments 1-240, wherein R 19 at each occurrence is independently chosen from C 1-6 alkyl, phenyl optionally substituted by 1 R 39 , C 3-6 cycloalkyl, 3-6 membered heterocycloalkyl optionally substituted by 1 R 39 , 5-6 membered heteroaryl, halogen, —C(═O)OR 30 , —NR 32 R 33 , and —OR 30 .

›Embodiment 266

The compound of any of Embodiments 1-240, wherein R 19 at each occurrence is independently chosen from C 1-6 alkyl, phenyl, C 3-6 cycloalkyl, 3-6 membered heterocycloalkyl, 5-6 membered heteroaryl, halogen, —C(═O)OR 30 , —NR 32 R 33 , and —OR 30 .

›Embodiment 267

The compound of any of Embodiments 1-266, wherein R 20 , R 21 , R 24 , R 25 , R 26 , R 27 , R 30 , R 31 , R 34 , R 35 , R 36 and R 37 at each occurrence is independently chosen from H, C 1-6 alkyl optionally substituted by 1-6 R 49 , C 2-6 alkenyl optionally substituted by 1-6 R 49 , C 2-6 alkynyl optionally substituted by 1-6 R 49 , C 6-11 aryl optionally substituted by 1-6 R 49 , C 7-16 arylalkyl optionally substituted by 1-6 R 49 , C 3-11 cycloalkyl optionally substituted by 1-6 R 49 , C 4-17 cycloalkylalkyl optionally substituted by 1-6 R 49 , 3-15 membered heterocycloalkyl optionally substituted by 1-6 R 49 , 4-21 membered heterocycloalkylalkyl optionally substituted by 1-6 R 49 , 5-15 membered heteroaryl optionally substituted by 1-6 R 49 , and 6-21 membered heteroarylalkyl optionally substituted by 1-6 R 49 .

›Embodiment 268

The compound of any of Embodiments 1-266, wherein R 20 , R 21 , R 24 , R 25 , R 26 , R 27 , R 30 , R 31 , R 34 , R 35 , R 36 and R 37 at each occurrence is independently chosen from H, C 1-6 alkyl optionally substituted by 1-6 R 49 , C 2-6 alkenyl optionally substituted by 1-6 R 49 , C 2-6 alkynyl optionally substituted by 1-6 R 49 , C 6-10 aryl optionally substituted by 1-6 R 49 , C 7-11 arylalkyl optionally substituted by 1-6 R 49 , C 3-10 cycloalkyl optionally substituted by 1-6 R 49 , 3-10 membered heterocycloalkyl optionally substituted by 1-6 R 49 , and 5-10 membered heteroaryl optionally substituted by 1-6 R 49 .

›Embodiment 269

The compound of any of Embodiments 1-266, wherein R 20 , R 21 , R 24 , R 25 , R 26 , R 27 , R 30 , R 31 , R 34 , R 35 , R 36 and R 37 at each occurrence is independently chosen from H, C 1-6 alkyl optionally substituted by 1-3 R 49 , C 2-6 alkenyl optionally substituted by 1-3 R 49 , C 2-6 alkynyl optionally substituted by 1-3 R 49 , C 6-10 aryl optionally substituted by 1-3 R 49 , C 7-11 arylalkyl optionally substituted by 1-3 R 49 , C 3-10 cycloalkyl optionally substituted by 1-3 R 49 , 3-10 membered heterocycloalkyl optionally substituted by 1-3 R 49 , and 5-10 membered heteroaryl optionally substituted by 1-3 R 49 .

›Embodiment 270

The compound of any of Embodiments 1-266, wherein R 20 , R 21 , R 24 , R 25 , R 26 , R 27 , R 30 , R 31 , R 34 , R 35 , R 36 and R 37 at each occurrence is independently chosen from H, C 1-6 alkyl optionally substituted by 1-3 R 49 , C 6-10 aryl optionally substituted by 1-3 R 49 , C 7-11 arylalkyl optionally substituted by 1-3 R 49 , C 3-10 cycloalkyl optionally substituted by 1-3 R 49 , 3-10 membered heterocycloalkyl optionally substituted by 1-3 R 49 , and 5-10 membered heteroaryl optionally substituted by 1-3 R 49 .

›Embodiment 271

The compound of any of Embodiments 1-266, wherein R 20 , R 21 , R 24 , R 25 , R 26 , R 27 , R 30 , R 31 , R 34 , R 35 , R 36 and R 37 at each occurrence is independently chosen from H, C 1-6 alkyl optionally substituted by 1-3 R 49 , C 6-10 aryl optionally substituted by 1-3 R 49 , C 7-11 arylalkyl optionally substituted by 1-3 R 49 , C 3-6 cycloalkyl optionally substituted by 1-3 R 49 3-6 membered heterocycloalkyl optionally substituted by 1-3 R 49 , and 5-6 membered heteroaryl optionally substituted by 1-3 R 49 .

›Embodiment 272

The compound of any of Embodiments 1-266, wherein R 20 , R 21 , R 24 , R 25 , R 26 , R 27 , R 30 , R 31 , R 34 , R 35 , R 36 and R 37 at each occurrence is independently chosen from H, C 1-6 alkyl optionally substituted by 1-3 R 49 , phenyl optionally substituted by 1-3 R 49 benzyl optionally substituted by 1-3 R 49 , C 3-6 cycloalkyl optionally substituted by 1-3 R 49 , 3-6 membered heterocycloalkyl optionally substituted by 1-3 R 49 , and 5-6 membered heteroaryl optionally substituted by 1-3 R 49 .

›Embodiment 273

The compound of any of Embodiments 1-266, wherein R 20 , R 21 , R 24 , R 25 , R 26 , R 27 , R 30 , R 31 , R 34 , R 35 , R 36 and R 37 at each occurrence is independently chosen from H, C 1-6 alkyl optionally substituted by 1-3 R 49 , phenyl optionally substituted by 1-3 R 49 benzyl optionally substituted by 1-3 R 49 , C 3-6 cycloalkyl, 3-6 membered heterocycloalkyl, and 5-6 membered heteroaryl.

›Embodiment 274

The compound of any of Embodiments 1-266, wherein R 20 at each occurrence is independently chosen from H, C 1-6 alkyl optionally substituted by 1-3 R 49 , phenyl optionally substituted by 1-3 R 49 , benzyl optionally substituted by 1-3 R 49 , C 3-6 cycloalkyl, 3-6 membered heterocycloalkyl, and 5-6 membered heteroaryl; R 21 , R 24 , R 25 , R 26 , R 27 , R 30 , R 31 , R 34 , R 35 , R 36 and R 37 at each occurrence is independently chosen from H and C 1-6 alkyl optionally substituted by 1-3 R 49 .

›Embodiment 275

The compound of any of Embodiments 1-266, wherein R 20 at each occurrence is independently chosen from H, C 1-6 alkyl optionally substituted by 1-3 R 49 , phenyl optionally substituted by 1-3 R 49 , benzyl optionally substituted by 1-3 R 49 , C 3-6 cycloalkyl, 3-6 membered heterocycloalkyl, and 5-6 membered heteroaryl; R 21 , R 24 , R 25 , R 26 , R 27 , R 30 , R 31 , R 34 , R 35 , R 36 and R 37 at each occurrence is independently chosen from H and C 1-6 alkyl.

›Embodiment 276

The compound of any of Embodiments 1-266, wherein R 20 at each occurrence is independently chosen from H, C 1-6 alkyl optionally substituted by 1-3 R 49 , phenyl optionally substituted by 1-3 R 49 , benzyl optionally substituted by 1-3 R 49 , C 3-6 cycloalkyl, 3-6 membered heterocycloalkyl, and 5-6 membered heteroaryl; R 21 , R 24 , R 25 , R 26 , R 27 , R 30 , R 31 , R 34 , R 35 , R 36 and R 37 at each occurrence is H.

›Embodiment 277

The compound of any of Embodiments 1-266, wherein R 20 , R 21 , R 24 , R 25 , R 26 , R 27 , R 30 , R 31 , R 34 , R 35 , R 36 and R 37 at each occurrence is independently chosen from H and C 1-6 alkyl optionally substituted by 1-6 R 49 .

›Embodiment 278

The compound of any of Embodiments 1-266, wherein R 20 , R 21 , R 24 , R 25 , R 26 , R 27 , R 30 , R 31 , R 34 , R 35 , R 36 and R 37 at each occurrence is independently chosen from H and C 1-6 alkyl.

›Embodiment 279

The compound of any of Embodiments 1-266, wherein R 20 , R 21 , R 24 , R 25 , R 26 , R 27 , R 30 , R 31 , R 34 , R 35 , R 36 and R 37 at each occurrence is independently chosen from H, C 1-6 alkyl optionally substituted by 1-3 R 49 , C 6-10 aryl optionally substituted by 1-3 R 49 , C 3-6 cycloalkyl optionally substituted by 1-3 R 49 , 3-6 membered heterocycloalkyl optionally substituted by 1-3 R 49 , and 5-6 membered heteroaryl optionally substituted by 1-3 R 49 .

›Embodiment 280

The compound of any of Embodiments 1-266, wherein R 20 , R 21 , R 24 , R 25 , R 26 , R 27 , R 30 , R 31 , R 34 , R 35 , R 36 and R 37 at each occurrence is independently chosen from H, C 6-10 aryl optionally substituted by 1-3 R 49 , C 3-6 cycloalkyl optionally substituted by 1-3 R 49 , 3-6 membered heterocycloalkyl optionally substituted by 1-3 R 49 , and 5-6 membered heteroaryl optionally substituted by 1-3 R 49 .

›Embodiment 281

The compound of any of Embodiments 1-266, wherein R 20 , R 21 , R 24 , R 25 , R 26 , R 27 , R 30 , R 31 , R 34 , R 35 , R 36 and R 37 at each occurrence is independently chosen from H, C 1-6 alkyl optionally substituted by 1-3 R 49 , phenyl optionally substituted by 1-3 R 49 , C 3-6 cycloalkyl optionally substituted by 1-3 R 49 , 5-6 membered heterocycloalkyl optionally substituted by 1-3 R 49 , and 5-6 membered heteroaryl optionally substituted by 1-3 R 49 .

›Embodiment 282

The compound of any of Embodiments 1-266, wherein R 20 , R 21 , R 24 , R 25 , R 26 , R 27 , R 30 , R 31 , R 34 , R 35 , R 36 and R 37 at each occurrence is independently chosen from H, phenyl optionally substituted by 1-3 R 49 , C 3-6 cycloalkyl optionally substituted by 1-3 R 49 , 5-6 membered heterocycloalkyl optionally substituted by 1-3 R 49 , and 5-6 membered heteroaryl optionally substituted by 1-3 R 49 .

›Embodiment 283

The compound of any of Embodiments 1-266, wherein R 20 , R 21 , R 24 , R 25 , R 26 , R 27 , R 30 , R 31 , R 34 , R 35 , R 36 and R 37 at each occurrence is independently chosen from H, C 1-6 alkyl, phenyl optionally substituted by 1-3 R 49 , C 3-6 cycloalkyl, 5-6 membered heterocycloalkyl, and 5-6 membered heteroaryl.

›Embodiment 284

The compound of any of Embodiments 1-266, wherein R 20 , R 21 , R 24 , R 25 , R 26 , R 27 , R 30 , R 31 , R 34 , R 35 , R 36 and R 37 at each occurrence is independently chosen from H, phenyl optionally substituted by 1-3 R 49 , C 3-6 cycloalkyl, 5-6 membered heterocycloalkyl, and 5-6 membered heteroaryl.

›Embodiment 285

The compound of any of Embodiments 1-266, wherein R 20 , R 21 , R 24 , R 25 , R 26 , R 27 , R 30 , R 31 , R 34 , R 35 , R 36 and R 37 at each occurrence is independently chosen from H, C 1-6 alkyl, phenyl optionally substituted by 1-3 R 49 , cyclopropyl, 5 membered heterocycloalkyl, and 5 membered heteroaryl.

›Embodiment 286

The compound of any of Embodiments 1-266, wherein R 20 , R 21 , R 24 , R 25 , R 26 , R 27 , R 30 , R 31 , R 34 , R 35 , R 36 and R 37 at each occurrence is independently chosen from H, phenyl optionally substituted by 1-3 R 49 , cyclopropyl, 5 membered heterocycloalkyl, and 5 membered heteroaryl.

›Embodiment 287

The compound of any of Embodiments 1-266, wherein R 20 , R 21 , R 24 , R 25 , R 26 , R 27 , R 30 , R 31 , R 34 , R 35 , R 36 and R 37 at each occurrence is independently chosen from H, C 1-6 alkyl, phenyl optionally substituted by 1 R 49 , C 3-6 cycloalkyl, 5-6 membered heterocycloalkyl, and 5-6 membered heteroaryl.

›Embodiment 288

The compound of any of Embodiments 1-266, wherein R 20 , R 21 , R 24 , R 25 , R 26 , R 27 , R 30 , R 31 , R 34 , R 35 , R 36 and R 37 at each occurrence is independently chosen from H, phenyl optionally substituted by 1 R 49 , C 3-6 cycloalkyl, 5-6 membered heterocycloalkyl, and 5-6 membered heteroaryl.

›Embodiment 289

The compound of any of Embodiments 1-266, wherein R 20 , R 21 , R 24 , R 25 , R 26 , R 27 , R 30 , R 31 , R 34 , R 35 , R 36 and R 37 at each occurrence is independently chosen from H, C 1-6 alkyl, phenyl, C 3-6 cycloalkyl, 5-6 membered heterocycloalkyl, and 5-6 membered heteroaryl.

›Embodiment 290

The compound of any of Embodiments 1-266, wherein R 20 , R 21 , R 24 , R 25 , R 26 , R 27 , R 30 , R 31 , R 34 , R 35 , R 36 and R 37 at each occurrence is independently chosen from H, phenyl, C 3-6 cycloalkyl, 5-6 membered heterocycloalkyl, and 5-6 membered heteroaryl.

›Embodiment 291

The compound of any of Embodiments 1-266, wherein R 20 , R 21 , R 24 , R 25 , R 26 , R 27 , R 30 , R 31 , R 34 , R 35 , R 36 and R 37 at each occurrence is independently chosen from H, C 1-6 alkyl, phenyl, cyclopropyl, 5 membered heterocycloalkyl, and 5 membered heteroaryl.

›Embodiment 292

The compound of any of Embodiments 1-266, wherein R 20 , R 21 , R 24 , R 25 , R 26 , R 27 , R 30 , R 31 , R 34 , R 35 , R 36 and R 37 at each occurrence is independently chosen from H, phenyl, cyclopropyl, 5 membered heterocycloalkyl, and 5 membered heteroaryl.

›Embodiment 293

The compound of any of Embodiments 1-266, wherein R 20 at each occurrence is independently chosen from H, C 1-6 alkyl optionally substituted by 1-3 R 49 , C 6-10 aryl optionally substituted by 1-3 R 49 , C 3-6 cycloalkyl optionally substituted by 1-3 R 49 , 3-6 membered heterocycloalkyl optionally substituted by 1-3 R 49 , and 5-6 membered heteroaryl optionally substituted by 1-3 R 49 ; R 21 , R 24 , R 25 , R 26 , R 27 , R 30 , R 31 , R 34 , R 35 , R 36 and R 37 at each occurrence is independently chosen from H and C 1-6 alkyl optionally substituted by 1-3 R 49 .

›Embodiment 294

The compound of any of Embodiments 1-266, wherein R 20 at each occurrence is independently chosen from H, C 6-10 aryl optionally substituted by 1-3 R 49 , C 3-6 cycloalkyl optionally substituted by 1-3 R 49 , 3-6 membered heterocycloalkyl optionally substituted by 1-3 R 49 , and 5-6 membered heteroaryl optionally substituted by 1-3 R 49 ; R 21 , R 24 , R 25 , R 26 , R 27 , R 30 , R 31 , R 34 , R 35 , R 36 and R 37 at each occurrence is independently chosen from H and C 1-6 alkyl optionally substituted by 1-3 R 49 .

›Embodiment 295

The compound of any of Embodiments 1-266, wherein R 20 at each occurrence is independently chosen from H, C 1-6 alkyl optionally substituted by 1-3 R 49 , phenyl optionally substituted by 1-3 R 49 , C 3-6 cycloalkyl optionally substituted by 1-3 R 49 , 5-6 membered heterocycloalkyl optionally substituted by 1-3 R 49 , and 5-6 membered heteroaryl optionally substituted by 1-3 R 49 ; R 21 , R 24 , R 25 , R 26 , R 27 , R 30 , R 31 , R 34 , R 35 , R 36 and R 37 at each occurrence is independently chosen from H and C 1-6 alkyl optionally substituted by 1-3 R 49 .

›Embodiment 296

The compound of any of Embodiments 1-266, wherein R 20 at each occurrence is independently chosen from H, phenyl optionally substituted by 1-3 R 49 , C 3-6 cycloalkyl optionally substituted by 1-3 R 49 , 5-6 membered heterocycloalkyl optionally substituted by 1-3 R 49 , and 5-6 membered heteroaryl optionally substituted by 1-3 R 49 ; R 21 , R 24 , R 25 , R 26 , R 27 , R 30 , R 31 , R 34 , R 35 , R 36 and R 37 at each occurrence is independently chosen from H and C 1-6 alkyl optionally substituted by 1-3 R 49 .

›Embodiment 297

The compound of any of Embodiments 1-266, wherein R 20 at each occurrence is independently chosen from H, C 1-6 alkyl, phenyl optionally substituted by 1-3 R 49 , C 3-6 cycloalkyl, 5-6 membered heterocycloalkyl, and 5-6 membered heteroaryl; R 21 , R 24 , R 25 , R 26 , R 27 , R 30 , R 31 , R 34 , R 35 , R 36 and R 37 at each occurrence is independently chosen from H and C 1-6 alkyl optionally substituted by 1-3 R 49 .

›Embodiment 298

The compound of any of Embodiments 1-266, wherein R 20 at each occurrence is independently chosen from H, phenyl optionally substituted by 1-3 R 49 , C 3-6 cycloalkyl, 5-6 membered heterocycloalkyl, and 5-6 membered heteroaryl; R 21 , R 24 , R 25 , R 26 , R 27 , R 30 , R 31 , R 34 , R 35 , R 36 and R 37 at each occurrence is independently chosen from H and C 1-6 alkyl optionally substituted by 1-3 R 49 .

›Embodiment 299

The compound of any of Embodiments 1-266, wherein R 20 at each occurrence is independently chosen from H, C 1-6 alkyl, phenyl optionally substituted by 1-3 R 49 cyclopropyl, 5 membered heterocycloalkyl, and 5 membered heteroaryl; R 21 , R 24 , R 25 , R 26 , R 27 , R 30 , R 31 , R 34 , R 35 , R 36 and R 37 at each occurrence is independently chosen from H and C 1-6 alkyl optionally substituted by 1-3 R 49 .

›Embodiment 300

The compound of any of Embodiments 1-266, wherein R 20 at each occurrence is independently chosen from H, phenyl optionally substituted by 1-3 R 49 cyclopropyl, 5 membered heterocycloalkyl, and 5 membered heteroaryl; R 21 , R 24 , R 25 , R 26 , R 27 , R 30 , R 31 , R 34 , R 35 , R 36 and R 37 at each occurrence is independently chosen from H and C 1-6 alkyl optionally substituted by 1-3 R 49 .

›Embodiment 301

The compound of any of Embodiments 1-266, wherein R 20 at each occurrence is independently chosen from H, C 1-6 alkyl, phenyl optionally substituted by 1 R 49 , C 3-6 cycloalkyl, 5-6 membered heterocycloalkyl, and 5-6 membered heteroaryl; R 21 , R 24 , R 25 , R 26 , R 27 , R 30 , R 31 , R 34 , R 35 , R 36 and R 37 at each occurrence is independently chosen from H and C 1-6 alkyl optionally substituted by 1-3 R 49 .

›Embodiment 302

The compound of any of Embodiments 1-266, wherein R 20 at each occurrence is independently chosen from H, phenyl optionally substituted by 1 R 49 , C 3-6 cycloalkyl, 5-6 membered heterocycloalkyl, and 5-6 membered heteroaryl; R 21 , R 24 , R 25 , R 26 , R 27 , R 30 , R 31 , R 34 , R 35 , R 36 and R 37 at each occurrence is independently chosen from H and C 1-6 alkyl optionally substituted by 1-3 R 49 .

›Embodiment 303

The compound of any of Embodiments 1-266, wherein R 20 at each occurrence is independently chosen from H, C 1-6 alkyl, phenyl, C 3-6 cycloalkyl, 5-6 membered heterocycloalkyl, and 5-6 membered heteroaryl; R 21 , R 24 , R 25 , R 26 , R 27 , R 30 , R 31 , R 34 , R 35 , R 36 and R 37 at each occurrence is independently chosen from H and C 1-6 alkyl optionally substituted by 1-3 R 49 .

›Embodiment 304

The compound of any of Embodiments 1-266, wherein R 20 at each occurrence is independently chosen from H, phenyl, C 3-6 cycloalkyl, 5-6 membered heterocycloalkyl, and 5-6 membered heteroaryl; R 21 , R 24 , R 25 , R 26 , R 27 , R 30 , R 31 , R 34 , R 35 , R 36 and R 37 at each occurrence is independently chosen from H and C 1-6 alkyl optionally substituted by 1-3 R 49 .

›Embodiment 305

The compound of any of Embodiments 1-266, wherein R 20 at each occurrence is independently chosen from H, C 1-6 alkyl, phenyl, cyclopropyl, 5 membered heterocycloalkyl, and 5 membered heteroaryl; R 21 , R 24 , R 25 , R 26 , R 27 , R 30 , R 31 , R 34 , R 35 , R 36 and R 37 at each occurrence is independently chosen from H and C 1-6 alkyl optionally substituted by 1-3 R 49 .

›Embodiment 306

The compound of any of Embodiments 1-266, wherein R 20 at each occurrence is independently chosen from H, phenyl, cyclopropyl, 5 membered heterocycloalkyl, and 5 membered heteroaryl; R 21 , R 24 , R 25 , R 26 , R 27 , R 30 , R 31 , R 34 , R 35 , R 36 and R 37 at each occurrence is independently chosen from H and C 1-6 alkyl optionally substituted by 1-3 R 49 .

›Embodiment 307

The compound of any of Embodiments 1-266, wherein R 20 at each occurrence is independently chosen from H, C 1-6 alkyl optionally substituted by 1-3 R 49 , C 6-10 aryl optionally substituted by 1-3 R 49 , C 3-6 cycloalkyl optionally substituted by 1-3 R 49 , 3-6 membered heterocycloalkyl optionally substituted by 1-3 R 49 , and 5-6 membered heteroaryl optionally substituted by 1-3 R 49 ; R 21 , R 24 , R 25 , R 26 , R 27 , R 30 , R 31 , R 34 , R 35 , R 36 and R 37 at each occurrence is independently chosen from H and C 1-6 alkyl.

›Embodiment 308

The compound of any of Embodiments 1-266, wherein R 20 at each occurrence is independently chosen from H, C 6-10 aryl optionally substituted by 1-3 R 49 , C 3-6 cycloalkyl optionally substituted by 1-3 R 49 , 3-6 membered heterocycloalkyl optionally substituted by 1-3 R 49 , and 5-6 membered heteroaryl optionally substituted by 1-3 R 49 ; R 21 , R 24 , R 25 , R 26 , R 27 , R 30 , R 31 , R 34 , R 35 , R 36 and R 37 at each occurrence is independently chosen from H and C 1-6 alkyl.

›Embodiment 309

The compound of any of Embodiments 1-266, wherein R 20 at each occurrence is independently chosen from H, C 1-6 alkyl optionally substituted by 1-3 R 49 , phenyl optionally substituted by 1-3 R 49 , C 3-6 cycloalkyl optionally substituted by 1-3 R 49 , 5-6 membered heterocycloalkyl optionally substituted by 1-3 R 49 , and 5-6 membered heteroaryl optionally substituted by 1-3 R 49 ; R 21 , R 24 , R 25 , R 26 , R 27 , R 30 , R 31 , R 34 , R 35 , R 36 and R 37 at each occurrence is independently chosen from H and C 1-6 alkyl.

›Embodiment 310

The compound of any of Embodiments 1-266, wherein R 20 at each occurrence is independently chosen from H, phenyl optionally substituted by 1-3 R 49 , C 3-6 cycloalkyl optionally substituted by 1-3 R 49 , 5-6 membered heterocycloalkyl optionally substituted by 1-3 R 49 , and 5-6 membered heteroaryl optionally substituted by 1-3 R 49 ; R 21 , R 24 , R 25 , R 26 , R 27 , R 30 , R 31 , R 34 , R 35 , R 36 and R 37 at each occurrence is independently chosen from H and C 1-6 alkyl.

›Embodiment 311

The compound of any of Embodiments 1-266, wherein R 20 at each occurrence is independently chosen from H, C 1-6 alkyl, phenyl optionally substituted by 1-3 R 49 , C 3-6 cycloalkyl, 5-6 membered heterocycloalkyl, and 5-6 membered heteroaryl; R 21 , R 24 , R 25 , R 26 , R 27 , R 30 , R 31 , R 34 , R 35 , R 36 and R 37 at each occurrence is independently chosen from H and C 1-6 alkyl.

›Embodiment 312

The compound of any of Embodiments 1-266, wherein R 20 at each occurrence is independently chosen from H, phenyl optionally substituted by 1-3 R 49 , C 3-6 cycloalkyl, 5-6 membered heterocycloalkyl, and 5-6 membered heteroaryl; R 21 , R 24 , R 25 , R 26 , R 27 , R 30 , R 31 , R 34 , R 35 , R 36 and R 37 at each occurrence is independently chosen from H and C 1-6 alkyl.

›Embodiment 313

The compound of any of Embodiments 1-266, wherein R 20 at each occurrence is independently chosen from H, C 1-6 alkyl, phenyl optionally substituted by 1-3 R 49 cyclopropyl, 5 membered heterocycloalkyl, and 5 membered heteroaryl; R 21 , R 24 , R 25 , R 26 , R 27 , R 30 , R 31 , R 34 , R 35 , R 36 and R 37 at each occurrence is independently chosen from H and C 1-6 alkyl.

›Embodiment 314

The compound of any of Embodiments 1-266, wherein R 20 at each occurrence is independently chosen from H, phenyl optionally substituted by 1-3 R 49 cyclopropyl, 5 membered heterocycloalkyl, and 5 membered heteroaryl; R 21 , R 24 , R 25 , R 26 , R 27 , R 30 , R 31 , R 34 , R 35 , R 36 and R 37 at each occurrence is independently chosen from H and C 1-6 alkyl.

›Embodiment 315

The compound of any of Embodiments 1-266, wherein R 20 at each occurrence is independently chosen from H, C 1-6 alkyl, phenyl optionally substituted by 1 R 49 , C 3-6 cycloalkyl, 5-6 membered heterocycloalkyl, and 5-6 membered heteroaryl; R 21 , R 24 , R 25 , R 26 , R 27 , R 30 , R 31 , R 34 , R 35 , R 36 and R 37 at each occurrence is independently chosen from H and C 1-6 alkyl.

›Embodiment 316

The compound of any of Embodiments 1-266, wherein R 20 at each occurrence is independently chosen from H, phenyl optionally substituted by 1 R 49 , C 3-6 cycloalkyl, 5-6 membered heterocycloalkyl, and 5-6 membered heteroaryl; R 21 , R 24 , R 25 , R 26 , R 27 , R 30 , R 31 , R 34 , R 35 , R 36 and R 37 at each occurrence is independently chosen from H and C 1-6 alkyl.

›Embodiment 317

The compound of any of Embodiments 1-266, wherein R 20 at each occurrence is independently chosen from H, C 1-6 alkyl, phenyl, C 3-6 cycloalkyl, 5-6 membered heterocycloalkyl, and 5-6 membered heteroaryl; R 21 , R 24 , R 25 , R 26 , R 27 , R 30 , R 31 , R 34 , R 35 , R 36 and R 37 at each occurrence is independently chosen from H and C 1-6 alkyl.

›Embodiment 318

The compound of any of Embodiments 1-266, wherein R 20 at each occurrence is independently chosen from H, phenyl, C 3-6 cycloalkyl, 5-6 membered heterocycloalkyl, and 5-6 membered heteroaryl; R 21 , R 24 , R 25 , R 26 , R 27 , R 30 , R 31 , R 34 , R 35 , R 36 and R 37 at each occurrence is independently chosen from H and C 1-6 alkyl.

›Embodiment 319

The compound of any of Embodiments 1-266, wherein R 20 at each occurrence is independently chosen from H, C 1-6 alkyl, phenyl, cyclopropyl, 5 membered heterocycloalkyl, and 5 membered heteroaryl; R 21 , R 24 , R 25 , R 26 , R 27 , R 30 , R 31 , R 34 , R 35 , R 36 and R 37 at each occurrence is independently chosen from H and C 1-6 alkyl.

›Embodiment 320

The compound of any of Embodiments 1-266, wherein R 20 at each occurrence is independently chosen from H, phenyl, cyclopropyl, 5 membered heterocycloalkyl, and 5 membered heteroaryl; R 21 , R 24 , R 25 , R 26 , R 27 , R 30 , R 31 , R 34 , R 35 , R 36 and R 37 at each occurrence is independently chosen from H and C 1-6 alkyl.

›Embodiment 321

The compound of any of Embodiments 1-266, wherein R 20 at each occurrence is independently chosen from H, C 1-6 alkyl optionally substituted by 1-3 R 49 , C 6-10 aryl optionally substituted by 1-3 R 49 , C 3-6 cycloalkyl optionally substituted by 1-3 R 49 , 3-6 membered heterocycloalkyl optionally substituted by 1-3 R 49 , and 5-6 membered heteroaryl optionally substituted by 1-3 R 49 ; R 21 , R 24 , R 25 , R 26 , R 27 , R 30 , R 31 , R 34 , R 35 , R 36 and R 37 at each occurrence is H.

›Embodiment 322

The compound of any of Embodiments 1-266, wherein R 20 at each occurrence is independently chosen from H, C 6-10 aryl optionally substituted by 1-3 R 49 , C 3-6 cycloalkyl optionally substituted by 1-3 R 49 , 3-6 membered heterocycloalkyl optionally substituted by 1-3 R 49 , and 5-6 membered heteroaryl optionally substituted by 1-3 R 49 ; R 21 , R 24 , R 25 , R 26 , R 27 , R 30 , R 31 , R 34 , R 35 , R 36 and R 37 at each occurrence is H.

›Embodiment 323

The compound of any of Embodiments 1-266, wherein R 20 at each occurrence is independently chosen from H, C 1-6 alkyl optionally substituted by 1-3 R 49 , phenyl optionally substituted by 1-3 R 49 , C 3-6 cycloalkyl optionally substituted by 1-3 R 49 , 5-6 membered heterocycloalkyl optionally substituted by 1-3 R 49 , and 5-6 membered heteroaryl optionally substituted by 1-3 R 49 ; R 21 , R 24 , R 25 , R 26 , R 27 , R 30 , R 31 , R 34 , R 35 , R 36 and R 37 at each occurrence is H.

›Embodiment 324

The compound of any of Embodiments 1-266, wherein R 20 at each occurrence is independently chosen from H, phenyl optionally substituted by 1-3 R 49 , C 3-6 cycloalkyl optionally substituted by 1-3 R 49 , 5-6 membered heterocycloalkyl optionally substituted by 1-3 R 49 , and 5-6 membered heteroaryl optionally substituted by 1-3 R 49 ; R 21 , R 24 , R 25 , R 26 , R 27 , R 30 , R 31 , R 34 , R 35 , R 36 and R 37 at each occurrence is H.

›Embodiment 325

The compound of any of Embodiments 1-266, wherein R 20 at each occurrence is independently chosen from H, C 1-6 alkyl, phenyl optionally substituted by 1-3 R 49 , C 3-6 cycloalkyl, 5-6 membered heterocycloalkyl, and 5-6 membered heteroaryl; R 21 , R 24 , R 25 , R 26 , R 27 , R 30 , R 31 , R 34 , R 35 , R 36 and R 37 at each occurrence is H.

›Embodiment 326

The compound of any of Embodiments 1-266, wherein R 20 at each occurrence is independently chosen from H, phenyl optionally substituted by 1-3 R 49 , C 3-6 cycloalkyl, 5-6 membered heterocycloalkyl, and 5-6 membered heteroaryl; R 21 , R 24 , R 25 , R 26 , R 27 , R 30 , R 31 , R 34 , R 35 , R 36 and R 37 at each occurrence is H.

›Embodiment 327

The compound of any of Embodiments 1-266, wherein R 20 at each occurrence is independently chosen from H, C 1-6 alkyl, phenyl optionally substituted by 1-3 R 49 cyclopropyl, 5 membered heterocycloalkyl, and 5 membered heteroaryl; R 21 , R 24 , R 25 , R 26 , R 27 , R 30 , R 31 , R 34 , R 35 , R 36 and R 37 at each occurrence is H.

›Embodiment 328

The compound of any of Embodiments 1-266, wherein R 20 at each occurrence is independently chosen from H, phenyl optionally substituted by 1-3 R 49 cyclopropyl, 5 membered heterocycloalkyl, and 5 membered heteroaryl; R 21 , R 24 , R 25 , R 26 , R 27 , R 30 , R 31 , R 34 , R 35 , R 36 and R 37 at each occurrence is H.

›Embodiment 329

The compound of any of Embodiments 1-266, wherein R 20 at each occurrence is independently chosen from H, C 1-6 alkyl, phenyl optionally substituted by 1 R 49 , C 3-6 cycloalkyl, 5-6 membered heterocycloalkyl, and 5-6 membered heteroaryl; R 21 , R 24 , R 25 , R 26 , R 27 , R 30 , R 31 , R 34 , R 35 , R 36 and R 37 at each occurrence is H.

›Embodiment 330

The compound of any of Embodiments 1-266, wherein R 20 at each occurrence is independently chosen from H, phenyl optionally substituted by 1 R 49 , C 3-6 cycloalkyl, 5-6 membered heterocycloalkyl, and 5-6 membered heteroaryl; R 21 , R 24 , R 25 , R 26 , R 27 , R 30 , R 31 , R 34 , R 35 , R 36 and R 37 at each occurrence is H.

›Embodiment 331

The compound of any of Embodiments 1-266, wherein R 20 at each occurrence is independently chosen from H, C 1-6 alkyl, phenyl, C 3-6 cycloalkyl, 5-6 membered heterocycloalkyl, and 5-6 membered heteroaryl; R 21 , R 24 , R 25 , R 26 , R 27 , R 30 , R 31 , R 34 , R 35 , R 36 and R 37 at each occurrence is H.

›Embodiment 332

The compound of any of Embodiments 1-266, wherein R 20 at each occurrence is independently chosen from H, phenyl, C 3-6 cycloalkyl, 5-6 membered heterocycloalkyl, and 5-6 membered heteroaryl; R 21 , R 24 , R 25 , R 26 , R 27 , R 30 , R 31 , R 34 , R 35 , R 36 and R 37 at each occurrence is H.

›Embodiment 333

The compound of any of Embodiments 1-266, wherein R 20 at each occurrence is independently chosen from H, C 1-6 alkyl, phenyl, cyclopropyl, 5 membered heterocycloalkyl, and 5 membered heteroaryl; R 21 , R 24 , R 25 , R 26 , R 27 , R 30 , R 31 , R 34 , R 35 , R 36 and R 37 at each occurrence is H.

›Embodiment 334

The compound of any of Embodiments 1-266, wherein R 20 at each occurrence is independently chosen from H, phenyl, cyclopropyl, 5 membered heterocycloalkyl, and 5 membered heteroaryl; R 21 , R 24 , R 25 , R 26 , R 27 , R 30 , R 31 , R 34 , R 35 , R 36 and R 37 at each occurrence is H.

›Embodiment 335

The compound of any of Embodiments 1-266, wherein R 20 , R 21 , R 24 , R 25 , R 26 , R 27 , R 30 , R 31 , R 34 , R 35 , R 36 and R 37 at each occurrence is H.

›Embodiment 336

The compound of any of Embodiments 1-335, wherein R 28 and R 38 at each occurrence is independently chosen from C 1-6 alkyl optionally substituted by 1-13 R 49 , C 2-6 alkenyl optionally substituted by 1-11 R 49 , C 2-6 alkynyl optionally substituted by 1-9 R 49 , C 6-11 aryl optionally substituted by 1-11 R 49 , C 7-16 arylalkyl optionally substituted by 1-19 R 49 , C 3-11 cycloalkyl optionally substituted by 1-21 R 49 , C 4-17 cycloalkylalkyl optionally substituted by 1-32 R 49 , 3-15 membered heterocycloalkyl optionally substituted by 1-28 R 49 , 4-21 membered heterocycloalkylalkyl optionally substituted by 1-40 R 49 , 5-15 membered heteroaryl optionally substituted by 1-15 R 49 , and 6-21 membered heteroarylalkyl optionally substituted by 1-27 R 49 .

›Embodiment 337

The compound of any of Embodiments 1-335, wherein R 28 and R 38 at each occurrence is independently chosen from C 1-6 alkyl optionally substituted by 1-3 R 49 , C 2-6 alkenyl optionally substituted by 1-3 R 49 , C 2-6 alkynyl optionally substituted by 1-3 R 49 , C 6-11 aryl optionally substituted by 1-3 R 49 , C 7-16 arylalkyl optionally substituted by 1-3 R 49 , C 3-11 cycloalkyl optionally substituted by 1-3 R 49 , C 4-17 cycloalkylalkyl optionally substituted by 1-3 R 49 , 3-15 membered heterocycloalkyl optionally substituted by 1-3 R 49 , 4-21 membered heterocycloalkylalkyl optionally substituted by 1-3 R 49 , 5-15 membered heteroaryl optionally substituted by 1-3 R 49 , and 6-21 membered heteroarylalkyl optionally substituted by 1-3 R 49 .

›Embodiment 338

The compound of any of Embodiments 1-335, wherein R 28 and R 38 at each occurrence is independently chosen from C 1-6 alkyl optionally substituted by 1-3 R 49 , C 2-6 alkenyl optionally substituted by 1-3 R 49 , C 2-6 alkynyl optionally substituted by 1-3 R 49 , C 6-10 aryl optionally substituted by 1-3 R 49 , C 7-11 arylalkyl optionally substituted by 1-3 R 49 , C 3-10 cycloalkyl optionally substituted by 1-3 R 49 , 3-10 membered heterocycloalkyl optionally substituted by 1-3 R 49 , and 5-10 membered heteroaryl optionally substituted by 1-3 R 49 .

›Embodiment 339

The compound of any of Embodiments 1-335, wherein R 28 and R 38 at each occurrence is independently chosen from C 1-6 alkyl optionally substituted by 1-3 R 49 , C 6-10 aryl optionally substituted by 1-3 R 49 , C 7-11 arylalkyl optionally substituted by 1-3 R 49 , C 3-10 cycloalkyl optionally substituted by 1-3 R 49 , 3-10 membered heterocycloalkyl optionally substituted by 1-3 R 49 , and 5-10 membered heteroaryl optionally substituted by 1-3 R 49 .

›Embodiment 340

The compound of any of Embodiments 1-335, wherein R 28 and R 38 at each occurrence is independently chosen from C 1-6 alkyl, C 6-10 aryl, C 7-11 arylalkyl, C 3-10 cycloalkyl, 3-10 membered heterocycloalkyl, and 5-10 membered heteroaryl.

›Embodiment 341

The compound of any of Embodiments 1-335, wherein R 28 and R 38 at each occurrence is independently chosen from C 1-6 alkyl, C 6-10 aryl, and C 7-11 arylalkyl.

›Embodiment 342

The compound of any of Embodiments 1-335, wherein R 28 and R 38 at each occurrence is independently chosen from C 1-6 alkyl, phenyl, and benzyl.

›Embodiment 343

The compound of any of Embodiments 1-335, wherein R 28 and R 38 at each occurrence is independently chosen from C 1-6 alkyl and C 6-10 aryl.

›Embodiment 344

The compound of any of Embodiments 1-335, wherein R 28 and R 38 at each occurrence is independently chosen from C 1-6 alkyl and phenyl.

›Embodiment 345

The compound of any of Embodiments 1-335, wherein R 28 and R 38 at each occurrence is C 1-6 alkyl optionally substituted by 1-3 R 49 .

›Embodiment 346

The compound of any of Embodiments 1-335, wherein R 28 and R 38 at each occurrence is C 1-6 alkyl.

›Embodiment 347

The compound of any of Embodiments 1-346, wherein R 22 , R 23 , R 32 and R 33 at each occurrence is independently chosen from H, C 1-6 alkyl optionally substituted by 1-13 R 59 , C 2-6 alkenyl optionally substituted by 1-11 R 59 , C 2-6 alkynyl optionally substituted by 1-9 R 59 , C 6-11 aryl optionally substituted by 1-11 R 59 , C 7-16 arylalkyl optionally substituted by 1-19 R 59 , C 3-11 cycloalkyl optionally substituted by 1-21 R 59 , C 4-17 cycloalkylalkyl optionally substituted by 1-32 R 59 , 3-15 membered heterocycloalkyl optionally substituted by 1-28 R 59 , 4-21 membered heterocycloalkylalkyl optionally substituted by 1-40 R 59 , 5-15 membered heteroaryl optionally substituted by 1-15 R 59 , and 6-21 membered heteroarylalkyl optionally substituted by 1-27 R 59 ; alternatively, any R 22 and R 23 and/or R 32 and R 33 may form, together with the nitrogen atom to which they are attached, a 3-15 membered heterocycloalkyl optionally substituted by 1-28 R 69 or a 5-15 membered heteroaryl optionally substituted by 1-15 R 69 .

›Embodiment 348

The compound of any of Embodiments 1-346, wherein R 22 , R 23 , R 32 and R 33 at each occurrence is independently chosen from H, C 1-6 alkyl optionally substituted by 1-3 R 59 , C 2-6 alkenyl optionally substituted by 1-3 R 59 , C 2-6 alkynyl optionally substituted by 1-3 R 59 , C 6-11 aryl optionally substituted by 1-3 R 59 , C 7-16 arylalkyl optionally substituted by 1-3 R 59 , C 3-11 cycloalkyl optionally substituted by 1-3 R 59 , C 4-17 cycloalkylalkyl optionally substituted by 1-3 R 59 , 3-15 membered heterocycloalkyl optionally substituted by 1-3 R 59 , 4-21 membered heterocycloalkylalkyl optionally substituted by 1-3 R 59 , 5-15 membered heteroaryl optionally substituted by 1-3 R 59 , and 6-21 membered heteroarylalkyl optionally substituted by 1-3 R 59 ; alternatively, any R 22 and R 23 and/or R 32 and R 33 may form, together with the nitrogen atom to which they are attached, a 3-15 membered heterocycloalkyl optionally substituted by 1-3 R 69 or a 5-15 membered heteroaryl optionally substituted by 1-3 R 69 .

›Embodiment 349

The compound of any of Embodiments 1-346, wherein R 22 , R 23 , R 32 and R 33 at each occurrence is independently chosen from H, C 1-6 alkyl optionally substituted by 1-3 R 59 , C 2-6 alkenyl optionally substituted by 1-3 R 59 , C 2-6 alkynyl optionally substituted by 1-3 R 59 , C 6-10 aryl optionally substituted by 1-3 R 59 , C 7-11 arylalkyl optionally substituted by 1-3 R 59 , C 3-10 cycloalkyl optionally substituted by 1-3 R 59 , 3-10 membered heterocycloalkyl optionally substituted by 1-3 R 59 , and 5-10 membered heteroaryl optionally substituted by 1-3 R 59 ; alternatively, any R 22 and R 23 and/or R 32 and R 33 may form, together with the nitrogen atom to which they are attached, a 3-10 membered heterocycloalkyl optionally substituted by 1-3 R 69 or a 5-10 membered heteroaryl optionally substituted by 1-3 R 69 .

›Embodiment 350

The compound of any of Embodiments 1-346, wherein R 22 , R 23 , R 32 and R 33 at each occurrence is independently chosen from H, C 1-6 alkyl optionally substituted by 1-3 R 59 , C 2-6 alkenyl optionally substituted by 1-3 R 59 , C 2-6 alkynyl optionally substituted by 1-3 R 59 , C 6-10 aryl optionally substituted by 1-3 R 59 , C 7-11 arylalkyl optionally substituted by 1-3 R 59 , C 3-10 cycloalkyl optionally substituted by 1-3 R 59 , 3-10 membered heterocycloalkyl optionally substituted by 1-3 R 59 , and 5-10 membered heteroaryl optionally substituted by 1-3 R 59 .

›Embodiment 351

The compound of any of Embodiments 1-346, wherein R 22 , R 23 , R 32 and R 33 at each occurrence is independently chosen from H, C 1-6 alkyl optionally substituted by 1-3 R 59 , C 6-10 aryl optionally substituted by 1-3 R 59 , C 7-11 arylalkyl optionally substituted by 1-3 R 59 , C 3-10 cycloalkyl optionally substituted by 1-3 R 59 , 3-10 membered heterocycloalkyl optionally substituted by 1-3 R 59 , and 5-10 membered heteroaryl optionally substituted by 1-3 R 59 ; alternatively, any R 22 and R 23 and/or R 32 and R 33 may form, together with the nitrogen atom to which they are attached, a 3-10 membered heterocycloalkyl optionally substituted by 1-3 R 69 or a 5-10 membered heteroaryl optionally substituted by 1-3 R 69 .

›Embodiment 352

The compound of any of Embodiments 1-346, wherein R 22 , R 23 , R 32 and R 33 at each occurrence is independently chosen from H, C 1-6 alkyl optionally substituted by 1-3 R 59 , C 6-10 aryl optionally substituted by 1-3 R 59 , C 7-11 arylalkyl optionally substituted by 1-3 R 59 , C 3-10 cycloalkyl optionally substituted by 1-3 R 59 , 3-10 membered heterocycloalkyl optionally substituted by 1-3 R 59 , and 5-10 membered heteroaryl optionally substituted by 1-3 R 59 .

›Embodiment 353

The compound of any of Embodiments 1-346, wherein R 22 , R 23 , R 32 and R 33 at each occurrence is independently chosen from H, C 1-6 alkyl, C 6-10 aryl, C 7-11 arylalkyl, C 3-10 cycloalkyl, 3-10 membered heterocycloalkyl, and 5-10 membered heteroaryl; alternatively, any R 22 and R 23 and/or R 32 and R 33 may form, together with the nitrogen atom to which they are attached, a 3-10 membered heterocycloalkyl or a 5-10 membered heteroaryl.

›Embodiment 354

The compound of any of Embodiments 1-346, wherein R 22 , R 23 , R 32 and R 33 at each occurrence is independently chosen from H, C 1-6 alkyl, C 6-10 aryl, C 7-11 arylalkyl, C 3-10 cycloalkyl, 3-10 membered heterocycloalkyl, and 5-10 membered heteroaryl.

›Embodiment 355

The compound of any of Embodiments 1-346, wherein R 22 , R 23 , R 32 and R 33 at each occurrence is independently chosen from H, C 1-6 alkyl optionally substituted by 1-3 R 59 , C 6-10 aryl optionally substituted by 1-3 R 59 , and 5-10 membered heteroaryl optionally substituted by 1-3 R 59 .

›Embodiment 356

The compound of any of Embodiments 1-346, wherein R 22 , R 23 , R 32 and R 33 at each occurrence is independently chosen from H, C 6-10 aryl optionally substituted by 1-3 R 59 , and 5-10 membered heteroaryl optionally substituted by 1-3 R 59 .

›Embodiment 357

The compound of any of Embodiments 1-346, wherein R 22 , R 23 , R 32 and R 33 at each occurrence is independently chosen from H, phenyl optionally substituted by 1-3 R 59 , and 5-6 membered heteroaryl optionally substituted by 1-3 R 59 .

›Embodiment 358

The compound of any of Embodiments 1-346, wherein R 22 , R 23 , R 32 and R 33 at each occurrence is independently chosen from H, phenyl optionally substituted by 1-3 R 59 , and 6 membered heteroaryl optionally substituted by 1-3 R 59 .

›Embodiment 359

The compound of any of Embodiments 1-346, wherein R 22 , R 23 , R 32 and R 33 at each occurrence is independently chosen from H, phenyl optionally substituted by 1 R 59 , and 6 membered heteroaryl optionally substituted by 1 R 59 .

›Embodiment 360

The compound of any of Embodiments 1-346, wherein R 22 at each occurrence is independently chosen from H, C 1-6 alkyl optionally substituted by 1-13 R 59 , C 2-6 alkenyl optionally substituted by 1-11 R 59 , C 2-6 alkynyl optionally substituted by 1-9 R 59 , C 6-11 aryl optionally substituted by 1-11 R 59 , C 7-16 arylalkyl optionally substituted by 1-19 R 59 , C 3-11 cycloalkyl optionally substituted by 1-21 R 59 , C 4-17 cycloalkylalkyl optionally substituted by 1-32 R 59 , 3-15 membered heterocycloalkyl optionally substituted by 1-28 R 59 , 4-21 membered heterocycloalkylalkyl optionally substituted by 1-40 R 59 , 5-15 membered heteroaryl optionally substituted by 1-15 R 59 , and 6-21 membered heteroarylalkyl optionally substituted by 1-27 R 59 ; R 23 , R 32 and R 33 at each occurrence is independently chosen from H and C 1-6 alkyl; alternatively, any R 22 and R 23 and/or R 32 and R 33 may form, together with the nitrogen atom to which they are attached, a 3-15 membered heterocycloalkyl optionally substituted by 1-28 R 69 or a 5-15 membered heteroaryl optionally substituted by 1-15 R 69 .

›Embodiment 361

The compound of any of Embodiments 1-346, wherein R 22 at each occurrence is independently chosen from H, C 1-6 alkyl optionally substituted by 1-3 R 59 , C 2-6 alkenyl optionally substituted by 1-3 R 59 , C 2-6 alkynyl optionally substituted by 1-3 R 59 , C 6-11 aryl optionally substituted by 1-3 R 59 , C 7-16 arylalkyl optionally substituted by 1-3 R 59 , C 3-11 cycloalkyl optionally substituted by 1-3 R 59 , C 4-17 cycloalkylalkyl optionally substituted by 1-3 R 59 , 3-15 membered heterocycloalkyl optionally substituted by 1-3 R 59 , 4-21 membered heterocycloalkylalkyl optionally substituted by 1-3 R 59 , 5-15 membered heteroaryl optionally substituted by 1-3 R 59 , and 6-21 membered heteroarylalkyl optionally substituted by 1-3 R 59 ; R 23 , R 32 and R 33 at each occurrence is independently chosen from H and C 1-6 alkyl; alternatively, any R 22 and R 23 and/or R 32 and R 33 may form, together with the nitrogen atom to which they are attached, a 3-15 membered heterocycloalkyl optionally substituted by 1-3 R 69 or a 5-15 membered heteroaryl optionally substituted by 1-3 R 69 .

›Embodiment 362

The compound of any of Embodiments 1-346, wherein R 22 at each occurrence is independently chosen from H, C 1-6 alkyl optionally substituted by 1-3 R 59 , C 2-6 alkenyl optionally substituted by 1-3 R 59 , C 2-6 alkynyl optionally substituted by 1-3 R 59 , C 6-10 aryl optionally substituted by 1-3 R 59 , C 7-11 arylalkyl optionally substituted by 1-3 R 59 , C 3-10 cycloalkyl optionally substituted by 1-3 R 59 , 3-10 membered heterocycloalkyl optionally substituted by 1-3 R 59 , and 5-10 membered heteroaryl optionally substituted by 1-3 R 59 ; R 23 , R 32 and R 33 at each occurrence is independently chosen from H and C 1-6 alkyl; alternatively, any R 22 and R 23 and/or R 32 and R 33 may form, together with the nitrogen atom to which they are attached, a 3-10 membered heterocycloalkyl optionally substituted by 1-3 R 69 or a 5-10 membered heteroaryl optionally substituted by 1-3 R 69 .

›Embodiment 363

The compound of any of Embodiments 1-346, wherein R 22 at each occurrence is independently chosen from H, C 1-6 alkyl optionally substituted by 1-3 R 59 , C 2-6 alkenyl optionally substituted by 1-3 R 59 , C 2-6 alkynyl optionally substituted by 1-3 R 59 , C 6-10 aryl optionally substituted by 1-3 R 59 , C 7-11 arylalkyl optionally substituted by 1-3 R 59 , C 3-10 cycloalkyl optionally substituted by 1-3 R 59 , 3-10 membered heterocycloalkyl optionally substituted by 1-3 R 59 , and 5-10 membered heteroaryl optionally substituted by 1-3 R 59 ; R 23 , R 32 and R 33 at each occurrence is independently chosen from H and C 1-6 alkyl.

›Embodiment 364

The compound of any of Embodiments 1-346, wherein R 22 at each occurrence is independently chosen from H, C 1-6 alkyl optionally substituted by 1-3 R 59 , C 6-10 aryl optionally substituted by 1-3 R 59 , C 7-11 arylalkyl optionally substituted by 1-3 R 59 , C 3-10 cycloalkyl optionally substituted by 1-3 R 59 , 3-10 membered heterocycloalkyl optionally substituted by 1-3 R 59 , and 5-10 membered heteroaryl optionally substituted by 1-3 R 59 ; R 23 , R 32 and R 33 at each occurrence is independently chosen from H and C 1-6 alkyl; alternatively, any R 22 and R 23 and/or R 32 and R 33 may form, together with the nitrogen atom to which they are attached, a 3-10 membered heterocycloalkyl optionally substituted by 1-3 R 69 or a 5-10 membered heteroaryl optionally substituted by 1-3 R 69 .

›Embodiment 365

The compound of any of Embodiments 1-346, wherein R 22 at each occurrence is independently chosen from H, C 1-6 alkyl optionally substituted by 1-3 R 59 , C 6-10 aryl optionally substituted by 1-3 R 59 , C 7-11 arylalkyl optionally substituted by 1-3 R 59 , C 3-10 cycloalkyl optionally substituted by 1-3 R 59 , 3-10 membered heterocycloalkyl optionally substituted by 1-3 R 59 , and 5-10 membered heteroaryl optionally substituted by 1-3 R 59 ; R 23 , R 32 and R 33 at each occurrence is independently chosen from H and C 1-6 alkyl.

›Embodiment 366

The compound of any of Embodiments 1-346, wherein R 22 at each occurrence is independently chosen from H, C 1-6 alkyl, C 6-10 aryl, C 7-11 arylalkyl, C 3-10 cycloalkyl, 3-10 membered heterocycloalkyl, and 5-10 membered heteroaryl; R 23 , R 32 and R 33 at each occurrence is independently chosen from H and C 1-6 alkyl; alternatively, any R 22 and R 23 and/or R 32 and R 33 may form, together with the nitrogen atom to which they are attached, a 3-10 membered heterocycloalkyl or a 5-10 membered heteroaryl.

›Embodiment 367

The compound of any of Embodiments 1-346, wherein R 22 at each occurrence is independently chosen from H, C 1-6 alkyl, C 6-10 aryl, C 7-11 arylalkyl, C 3-10 cycloalkyl, 3-10 membered heterocycloalkyl, and 5-10 membered heteroaryl; R 23 , R 32 and R 33 at each occurrence is independently chosen from H and C 1-6 alkyl.

›Embodiment 368

The compound of any of Embodiments 1-346, wherein R 22 at each occurrence is independently chosen from H, C 1-6 alkyl optionally substituted by 1-3 R 59 , C 6-10 aryl optionally substituted by 1-3 R 59 , and 5-10 membered heteroaryl optionally substituted by 1-3 R 59 ; R 23 , R 32 and R 33 at each occurrence is independently chosen from H and C 1-6 alkyl.

›Embodiment 369

The compound of any of Embodiments 1-346, wherein R 22 at each occurrence is independently chosen from H, C 6-10 aryl optionally substituted by 1-3 R 59 , and 5-10 membered heteroaryl optionally substituted by 1-3 R 59 ; R 23 , R 32 and R 33 at each occurrence is independently chosen from H and C 1-6 alkyl.

›Embodiment 370

The compound of any of Embodiments 1-346, wherein R 22 at each occurrence is independently chosen from H, phenyl optionally substituted by 1-3 R 59 , and 5-6 membered heteroaryl optionally substituted by 1-3 R 59 ; R 23 , R 32 and R 33 at each occurrence is independently chosen from H and C 1-6 alkyl.

›Embodiment 371

The compound of any of Embodiments 1-346, wherein R 22 at each occurrence is independently chosen from H, phenyl optionally substituted by 1-3 R 59 , and 6 membered heteroaryl optionally substituted by 1-3 R 59 ; R 23 , R 32 and R 33 at each occurrence is independently chosen from H and C 1-6 alkyl.

›Embodiment 372

The compound of any of Embodiments 1-346, wherein R 22 at each occurrence is independently chosen from H, phenyl optionally substituted by 1 R 59 , and 6 membered heteroaryl optionally substituted by 1 R 59 ; R 23 , R 32 and R 33 at each occurrence is independently chosen from H and C 1-6 alkyl.

›Embodiment 373

The compound of any of Embodiments 1-346, wherein R 22 at each occurrence is independently chosen from H, C 1-6 alkyl optionally substituted by 1-13 R 59 , C 2-6 alkenyl optionally substituted by 1-11 R 59 , C 2-6 alkynyl optionally substituted by 1-9 R 59 , C 6-11 aryl optionally substituted by 1-11 R 59 , C 7-16 arylalkyl optionally substituted by 1-19 R 59 , C 3-11 cycloalkyl optionally substituted by 1-21 R 59 , C 4-17 cycloalkylalkyl optionally substituted by 1-32 R 59 , 3-15 membered heterocycloalkyl optionally substituted by 1-28 R 59 , 4-21 membered heterocycloalkylalkyl optionally substituted by 1-40 R 59 , 5-15 membered heteroaryl optionally substituted by 1-15 R 59 , and 6-21 membered heteroarylalkyl optionally substituted by 1-27 R 59 ; R 23 , R 32 and R 33 at each occurrence is H; alternatively, any R 22 and R 23 and/or R 32 and R 33 may form, together with the nitrogen atom to which they are attached, a 3-15 membered heterocycloalkyl optionally substituted by 1-28 R 69 or a 5-15 membered heteroaryl optionally substituted by 1-15 R 69 .

›Embodiment 374

The compound of any of Embodiments 1-346, wherein R 22 at each occurrence is independently chosen from H, C 1-6 alkyl optionally substituted by 1-3 R 59 , C 2-6 alkenyl optionally substituted by 1-3 R 59 , C 2-6 alkynyl optionally substituted by 1-3 R 59 , C 6-11 aryl optionally substituted by 1-3 R 59 , C 7-16 arylalkyl optionally substituted by 1-3 R 59 , C 3-11 cycloalkyl optionally substituted by 1-3 R 59 , C 4-17 cycloalkylalkyl optionally substituted by 1-3 R 59 , 3-15 membered heterocycloalkyl optionally substituted by 1-3 R 59 , 4-21 membered heterocycloalkylalkyl optionally substituted by 1-3 R 59 , 5-15 membered heteroaryl optionally substituted by 1-3 R 59 , and 6-21 membered heteroarylalkyl optionally substituted by 1-3 R 59 ; R 23 , R 32 and R 33 at each occurrence is H; alternatively, any R 22 and R 23 and/or R 32 and R 33 may form, together with the nitrogen atom to which they are attached, a 3-15 membered heterocycloalkyl optionally substituted by 1-3 R 69 or a 5-15 membered heteroaryl optionally substituted by 1-3 R 69 .

›Embodiment 375

The compound of any of Embodiments 1-346, wherein R 22 at each occurrence is independently chosen from H, C 1-6 alkyl optionally substituted by 1-3 R 59 , C 2-6 alkenyl optionally substituted by 1-3 R 59 , C 2-6 alkynyl optionally substituted by 1-3 R 59 , C 6-10 aryl optionally substituted by 1-3 R 59 , C 7-11 arylalkyl optionally substituted by 1-3 R 59 , C 3-10 cycloalkyl optionally substituted by 1-3 R 59 , 3-10 membered heterocycloalkyl optionally substituted by 1-3 R 59 , and 5-10 membered heteroaryl optionally substituted by 1-3 R 59 ; R 23 , R 32 and R 33 at each occurrence is H; alternatively, any R 22 and R 23 and/or R 32 and R 33 may form, together with the nitrogen atom to which they are attached, a 3-10 membered heterocycloalkyl optionally substituted by 1-3 R 69 or a 5-10 membered heteroaryl optionally substituted by 1-3 R 69 .

›Embodiment 376

The compound of any of Embodiments 1-346, wherein R 22 at each occurrence is independently chosen from H, C 1-6 alkyl optionally substituted by 1-3 R 59 , C 2-6 alkenyl optionally substituted by 1-3 R 59 , C 2-6 alkynyl optionally substituted by 1-3 R 59 , C 6-10 aryl optionally substituted by 1-3 R 59 , C 7-11 arylalkyl optionally substituted by 1-3 R 59 , C 3-10 cycloalkyl optionally substituted by 1-3 R 59 , 3-10 membered heterocycloalkyl optionally substituted by 1-3 R 59 , and 5-10 membered heteroaryl optionally substituted by 1-3 R 59 ; R 23 , R 32 and R 33 at each occurrence is H.

›Embodiment 377

The compound of any of Embodiments 1-346, wherein R 22 at each occurrence is independently chosen from H, C 1-6 alkyl optionally substituted by 1-3 R 59 , C 6-10 aryl optionally substituted by 1-3 R 59 , C 7-11 arylalkyl optionally substituted by 1-3 R 59 , C 3-10 cycloalkyl optionally substituted by 1-3 R 59 , 3-10 membered heterocycloalkyl optionally substituted by 1-3 R 59 , and 5-10 membered heteroaryl optionally substituted by 1-3 R 59 ; R 23 , R 32 and R 33 at each occurrence is H; alternatively, any R 22 and R 23 and/or R 32 and R 33 may form, together with the nitrogen atom to which they are attached, a 3-10 membered heterocycloalkyl optionally substituted by 1-3 R 69 or a 5-10 membered heteroaryl optionally substituted by 1-3 R 69 .

›Embodiment 378

The compound of any of Embodiments 1-346, wherein R 22 at each occurrence is independently chosen from H, C 1-6 alkyl optionally substituted by 1-3 R 59 , C 6-10 aryl optionally substituted by 1-3 R 59 , C 7-11 arylalkyl optionally substituted by 1-3 R 59 , C 3-10 cycloalkyl optionally substituted by 1-3 R 59 , 3-10 membered heterocycloalkyl optionally substituted by 1-3 R 59 , and 5-10 membered heteroaryl optionally substituted by 1-3 R 59 ; R 23 , R 32 and R 33 at each occurrence is H.

›Embodiment 379

The compound of any of Embodiments 1-346, wherein R 22 at each occurrence is independently chosen from H, C 1-6 alkyl, C 6-10 aryl, C 7-11 arylalkyl, C 3-10 cycloalkyl, 3-10 membered heterocycloalkyl, and 5-10 membered heteroaryl; R 23 , R 32 and R 33 at each occurrence is H; alternatively, any R 22 and R 23 and/or R 32 and R 33 may form, together with the nitrogen atom to which they are attached, a 3-10 membered heterocycloalkyl or a 5-10 membered heteroaryl.

›Embodiment 380

The compound of any of Embodiments 1-346, wherein R 22 at each occurrence is independently chosen from H, C 1-6 alkyl, C 6-10 aryl, C 7-11 arylalkyl, C 3-10 cycloalkyl, 3-10 membered heterocycloalkyl, and 5-10 membered heteroaryl; R 23 , R 32 and R 33 at each occurrence is H.

›Embodiment 381

The compound of any of Embodiments 1-346, wherein R 22 at each occurrence is independently chosen from H, C 1-6 alkyl optionally substituted by 1-3 R 59 , C 6-10 aryl optionally substituted by 1-3 R 59 , and 5-10 membered heteroaryl optionally substituted by 1-3 R 59 ; R 23 , R 32 and R 33 at each occurrence is H.

›Embodiment 382

The compound of any of Embodiments 1-346, wherein R 22 at each occurrence is independently chosen from H, C 6-10 aryl optionally substituted by 1-3 R 59 , and 5-10 membered heteroaryl optionally substituted by 1-3 R 59 ; R 23 , R 32 and R 33 at each occurrence is H.

›Embodiment 383

The compound of any of Embodiments 1-346, wherein R 22 at each occurrence is independently chosen from H, phenyl optionally substituted by 1-3 R 59 , and 5-6 membered heteroaryl optionally substituted by 1-3 R 59 ; R 23 , R 32 and R 33 at each occurrence is H.

›Embodiment 384

The compound of any of Embodiments 1-346, wherein R 22 at each occurrence is independently chosen from H, phenyl optionally substituted by 1-3 R 59 , and 6 membered heteroaryl optionally substituted by 1-3 R 59 ; R 23 , R 32 and R 33 at each occurrence is H.

›Embodiment 385

The compound of any of Embodiments 1-346, wherein R 22 at each occurrence is independently chosen from H, phenyl optionally substituted by 1 R 59 , and 6 membered heteroaryl optionally substituted by 1 R 59 ; R 23 , R 32 and R 33 at each occurrence is H.

›Embodiment 386

The compound of any of Embodiments 1-346, wherein R 22 , R 23 , R 32 and R 33 at each occurrence is independently chosen from H and C 1-6 alkyl.

›Embodiment 387

The compound of any of Embodiments 1-346, wherein R 22 , R 23 , R 32 and R 33 at each occurrence is H.

›Embodiment 388

The compound of any of Embodiments 1-346, wherein R 22 , R 23 , R 32 and R 33 at each occurrence is independently chosen from H and C 1-6 alkyl optionally substituted by 1-13 R 59 ; alternatively, any R 22 and R 23 and/or R 32 and R 33 may form, together with the nitrogen atom to which they are attached, a 3-15 membered heterocycloalkyl optionally substituted by 1-28 R 69 or a 5-15 membered heteroaryl optionally substituted by 1-15 R 69 .

›Embodiment 389

The compound of any of Embodiments 1-346, wherein R 22 , R 23 , R 32 and R 33 at each occurrence is independently chosen from H and C 1-6 alkyl optionally substituted by 1-6 R 59 ; alternatively, any R 22 and R 23 and/or R 32 and R 33 may form, together with the nitrogen atom to which they are attached, a 3-15 membered heterocycloalkyl optionally substituted by 1-6 R 69 or a 5-15 membered heteroaryl optionally substituted by 1-6 R 69 .

›Embodiment 390

The compound of any of Embodiments 1-346, wherein R 22 , R 23 , R 32 and R 33 at each occurrence is independently chosen from H and C 1-6 alkyl optionally substituted by 1-6 R 59 ; alternatively, any R 22 and R 23 and/or R 32 and R 33 may form, together with the nitrogen atom to which they are attached, a 3-10 membered heterocycloalkyl optionally substituted by 1-6 R 69 or a 5-10 membered heteroaryl optionally substituted by 1-6 R 69 .

›Embodiment 391

The compound of any of Embodiments 1-346, wherein R 22 , R 23 , R 32 and R 33 at each occurrence is independently chosen from H and C 1-6 alkyl optionally substituted by 1-6 R 59 ; alternatively, any R 22 and R 23 and/or R 32 and R 33 may form, together with the nitrogen atom to which they are attached, a 3-6 membered heterocycloalkyl optionally substituted by 1-6 R 69 or a 5-6 membered heteroaryl optionally substituted by 1-6 R 69 .

›Embodiment 392

The compound of any of Embodiments 1-346, wherein R 22 , R 23 , R 32 and R 33 at each occurrence is independently chosen from H and C 1-6 alkyl optionally; alternatively, any R 22 and R 23 and/or R 32 and R 33 may form, together with the nitrogen atom to which they are attached, a 3-6 membered heterocycloalkyl or a 5-6 membered heteroaryl.

›Embodiment 393

The compound of any of Embodiments 1-392, wherein R 39 , R 49 , R 59 and R 69 at each occurrence is independently chosen from C 1-6 alkyl optionally substituted by 1-13 R 79 , C 2-6 alkenyl optionally substituted by 1-11 R 79 , C 2-6 alkynyl optionally substituted by 1-9 R 79 , C 6-11 aryl optionally substituted by 1-11 R 79 , C 7-16 arylalkyl optionally substituted by 1-19 R 79 , C 3-11 cycloalkyl optionally substituted by 1-21 R 79 , C 4-17 cycloalkylalkyl optionally substituted by 1-32 R 79 , 3-15 membered heterocycloalkyl optionally substituted by 1-28 R 79 , 4-21 membered heterocycloalkylalkyl optionally substituted by 1-40 R 79 , 5-15 membered heteroaryl optionally substituted by 1-15 R 79 , 6-21 membered heteroarylalkyl optionally substituted by 1-27 R 79 , halogen, —CN, —C(═O)R 70 , —C(═O)OR 70 , —C(═O)NR 72 R 73 , —C(═O)C(═O)R 70 , —C(═NR 75 )R 70 , —C(═NR 75 )NR 72 R 73 , —C(═NOH)NR 72 R 73 , —C(═NOR 76 )R 70 , —C(═NNR 72 R 73 )R 70 , —C(═NNR 74 C(═O)R 71 )R 70 , —C(═NNR 74 C(═O)OR 71 )R 70 , —C(═S)NR 72 R 73 , —NC, —NO 2 , —NR 72 R 73 , —NR 74 NR 72 R 73 , —N═NR 74 , ═NR 70 , ═NOR 70 , —NR 74 OR 76 , —NR 74 C(═O)R 70 , —NR 74 C(═O)C(═O)R 70 , —NR 74 C(═O)OR 71 , —NR 74 C(═O)C(═O)OR 71 , —NR 74 C(═O)NR 72 R 73 , —NR 74 C(═O)NR 74 C(═O)R 70 , —NR 74 C(═O)NR 74 C(═O)OR 70 , —NR 74 C(═NR 75 )NR 72 R 73 , —NR 74 C(═O)C(═O)NR 72 R 73 , —NR 74 C(═S)R 70 , —NR 74 C(═S)OR 70 , —NR 74 C(═S)NR 72 R 73 , —NR 74 S(═O) 2 R 71 , —NR 74 S(═O) 2 NR 72 R 73 , —NR 74 P(═O)R 78 R 78 , —NR 74 P(═O)(NR 72 R 73 )(NR 72 R 73 ), —NR 74 P(═O)(OR 70 )(OR 70 ), —NR 74 P(═O)(SR 70 )(SR 70 ), —OR 70 , ═O, —OCN, —OC(═O)R 70 , —OC(═O)NR 72 R 73 , —OC(═O)OR 70 , —OC(═NR 75 )NR 72 R 73 , —OS(═O)R 70 , —OS(═O) 2 R 70 , —OS(═O) 2 OR 70 , —OS(═O) 2 NR 72 R 73 , —OP(═O)R 78 R 78 , —OP(═O)(NR 72 R 73 )(NR 72 R 73 ), —OP(═O)(OR 70 )(OR 70 ), —OP(═O)(SR 70 )(SR 70 ), —Si(R 74 ) 3 , —SCN, ═S, —S(═O) n R 70 , —S(═O) 2 OR 70 , —SO 3 R 77 , —S(═O) 2 NR 72 R 73 , —S(═O)NR 72 R 73 , —SP(═O)R 78 R 78 , —SP(═O)(NR 72 R 73 )(NR 72 R 73 ), —SP(═O)(OR 70 )(OR 70 ), —SP(═O)(SR 70 )(SR 70 ), —P(═O)R 78 R 78 , —P(═O)(NR 72 R 73 )(NR 72 R 73 ), —P(═O)(OR 70 )(OR 70 ), and —P(═O)(SR 70 )(SR 70 ).

›Embodiment 394

The compound of any of Embodiments 1-392, wherein R 39 , R 49 , R 59 and R 69 at each occurrence is independently chosen from C 1-6 alkyl optionally substituted by 1-6 R 79 , C 2-6 alkenyl optionally substituted by 1-6 R 79 , C 2-6 alkynyl optionally substituted by 1-6 R 79 , C 6-11 aryl optionally substituted by 1-6 R 79 , C 7-16 arylalkyl optionally substituted by 1-6 R 79 , C 3-11 cycloalkyl optionally substituted by 1-6 R 79 , C 4-17 cycloalkylalkyl optionally substituted by 1-6 R 79 , 3-15 membered heterocycloalkyl optionally substituted by 1-6 R 79 , 4-21 membered heterocycloalkylalkyl optionally substituted by 1-6 R 79 , 5-15 membered heteroaryl optionally substituted by 1-6 R 79 , 6-21 membered heteroarylalkyl optionally substituted by 1-6 R 79 , halogen, —CN, —C(═O)R 70 , —C(═O)OR 70 , —C(═O)NR 72 R 73 , —C(═O)C(═O)R 70 , —C(═NR 75 )R 70 , —C(═NR 75 )NR 72 R 73 , —C(═NOH)NR 72 R 73 , —C(═NOR 76 )R 70 , —C(═NNR 72 R 73 )R 70 , —C(═NNR 74 C(═O)R 71 )R 70 , —C(═NNR 74 C(═O)OR 71 )R 70 , —C(═S)NR 72 R 73 , —NC, —NO 2 , —NR 72 R 73 , —NR 74 NR 72 R 73 , —N═NR 74 , ═NR 70 , ═NOR 70 , —NR 74 OR 76 , —NR 74 C(═O)R 70 , —NR 74 C(═O)C(═O)R 70 , —NR 74 C(═O)OR 71 , —NR 74 C(═O)C(═O)OR 71 , —NR 74 C(═O)NR 72 R 73 , —NR 74 C(═O)NR 74 C(═O)R 70 , —NR 74 C(═O)NR 74 C(═O)OR 70 , —NR 74 C(═NR 75 )NR 72 R 73 , —NR 74 C(═O)C(═O)NR 72 R 73 , —NR 74 C(═S)R 70 , —NR 74 C(═S)OR 70 , —NR 74 C(═S)NR 72 R 73 , —NR 74 S(═O) 2 R 71 , —NR 74 S(═O) 2 NR 72 R 73 , —NR 74 P(═O)R 78 R 78 , —NR 74 P(═O)(NR 72 R 73 )(NR 72 R 73 ), —NR 74 P(═O)(OR 70 )(OR 70 ), —NR 74 P(═O)(SR 70 )(SR 70 ), —OR 70 , ═O, —OCN, —OC(═O)R 70 , —OC(═O)NR 72 R 73 , —OC(═O)OR 70 , —OC(═NR 75 )NR 72 R 73 , —OS(═O)R 70 , —OS(═O) 2 R 70 , —OS(═O) 2 OR 70 , —OS(═O) 2 NR 72 R 73 , —OP(═O)R 78 R 78 , —OP(═O)(NR 72 R 73 )(NR 72 R 73 ), —OP(═O)(OR 70 )(OR 70 ), —OP(═O)(SR 70 )(SR 70 ), —Si(R 74 ) 3 , —SCN, ═S, —S(═O)(NR 70 , —S(═O) 2 OR 70 , —SO 3 R 77 , —S(═O) 2 NR 72 R 73 , —S(═O)NR 72 R 73 , —SP(═O)R 78 R 78 , —SP(═O)(NR 72 R 73 )(NR 72 R 73 ), —SP(═O)(OR 70 )(OR 70 ), —SP(═O)(SR 70 )(SR 70 ), —P(═O)R 78 R 78 , —P(═O)(NR 72 R 73 )(NR 72 R 73 ), —P(═O)(OR 70 )(OR 70 ), and —P(═O)(SR 70 )(SR 70 ).

›Embodiment 395

The compound of any of Embodiments 1-392, wherein R 39 , R 49 , R 59 and R 69 at each occurrence is independently chosen from C 1-6 alkyl optionally substituted by 1-6 R 79 , C 2-6 alkenyl optionally substituted by 1-6 R 79 , C 2-6 alkynyl optionally substituted by 1-6 R 79 , C 6-11 aryl optionally substituted by 1-6 R 79 , C 7-16 arylalkyl optionally substituted by 1-6 R 79 , C 3-11 cycloalkyl optionally substituted by 1-6 R 79 , 3-15 membered heterocycloalkyl optionally substituted by 1-6 R 79 , 5-15 membered heteroaryl optionally substituted by 1-6 R 79 , halogen, —CN, —C(═O)R 70 , —C(═O)OR 70 , —C(═O)NR 72 R 73 , —C(═O)C(═O)R 70 , —NC, —NO 2 , —NR 72 R 73 , —NR 74 NR 72 R 73 , —N═NR 74 , ═NR 70 , ═NOR 70 , —NR 74 OR 76 , —NR 74 C(═O)R 70 , —NR 74 C(═O)C(═O)R 70 , —NR 74 C(═O)OR 71 , —NR 74 C(═O)C(═O)OR 71 , —NR 74 C(═O)NR 72 R 73 , —NR 74 C(═O)NR 74 C(═O)R 70 , —NR 74 C(═O)NR 74 C(═O)OR 70 , —NR 74 C(═NR 75 )NR 72 R 73 , —NR 74 C(═O)C(═O)NR 72 R 73 , —NR 74 S(═O) 2 R 71 , —NR 74 S(═O) 2 NR 72 R 73 , —NR 74 P(═O)R 78 R 78 , —NR 74 P(═O)(NR 72 R 73 )(NR 72 R 73 ), —NR 74 P(═O)(OR 70 )(OR 70 ), —OR 70 , ═O, —OCN, —OC(═O)R 70 , —OC(═O)NR 72 R 73 , —OC(═O)OR 70 , —OC(═NR 75 )NR 72 R 73 , —OS(═O)R 70 , —OS(═O) 2 R 70 , —OS(═O) 2 OR 70 , —OS(═O) 2 NR 72 R 73 , —OP(═O)R 78 R 78 , —OP(═O)(NR 72 R 73 )(NR 72 R 73 ), —OP(═O)(OR 70 )(OR 70 ), —Si(R 74 ) 3 , —SCN, ═S, —S(═O) n R 70 , —S(═O) 2 OR 70 , —SO 3 R 77 , —S(═O) 2 NR 72 R 73 , —S(═O)NR 72 R 73 , —SP(═O)R 78 R 78 , SP(═O)(NR 72 R 73 )(NR 72 R 73 ), —SP(═O)(OR 70 )(OR 70 ), —SP(═O)(SR 70 )(SR 70 ), —P(═O)R 78 R 78 , —P(═O)(NR 72 R 73 )(NR 72 R 73 ), and —P(═O)(OR 70 )(OR 70 ).

›Embodiment 396

The compound of any of Embodiments 1-392, wherein R 39 , R 49 , R 59 and R 69 at each occurrence is independently chosen from C 1-6 alkyl optionally substituted by 1-6 R 79 , C 2-6 alkenyl optionally substituted by 1-6 R 79 , C 2-6 alkynyl optionally substituted by 1-6 R 79 , C 6-10 aryl optionally substituted by 1-6 R 79 , C 7-11 arylalkyl optionally substituted by 1-6 R 79 , C 3-10 cycloalkyl optionally substituted by 1-6 R 79 , 3-10 membered heterocycloalkyl optionally substituted by 1-6 R 79 , 5-10 membered heteroaryl optionally substituted by 1-6 R 79 , halogen, —CN, —C(═O)R 70 , —C(═O)OR 70 , —C(═O)NR 72 R 73 , —C(═O)C(═O)R 70 , —NC, —NO 2 , —NR 72 R 73 , —NR 74 NR 72 R 73 , —N═NR 74 , ═NR 70 , ═NOR 70 , —NR 74 OR 76 , —NR 74 C(═O)R 70 , —NR 74 C(═O)OR 71 , —NR 74 C(═O)NR 72 R 73 , —NR 74 S(═O) 2 R 71 , —NR 74 S(═O) 2 NR 72 R 73 , —NR 74 P(═O)R 78 R 78 , —NR 74 P(═O)(NR 72 R 73 )(NR 72 R 73 ), —NR 74 P(═O)(OR 70 )(OR 70 ), —OR 70 , ═O, —OCN, —OC(═O)R 70 , —OC(═O)NR 72 R 73 , —OC(═O)OR 70 , —OC(═NR 75 )NR 72 R 73 , —OS(═O)R 70 , —OS(═O) 2 R 70 , —OS(═O) 2 OR 70 , —OS(═O) 2 NR 72 R 73 , —OP(═O)R 78 R 78 , —OP(═O)(NR 72 R 73 )(NR 72 R 73 ), —OP(═O)(OR 70 )(OR 70 ), —Si(R 74 ) 3 , —SCN, ═S, —S(═O) n R 70 , —S(═O) 2 OR 70 , —SO 3 R 77 , —S(═O) 2 NR 72 R 73 , —S(═O)NR 72 R 73 , —P(═O)R 78 R 78 , —P(═O)(NR 72 R 73 )(NR 72 R 73 ), and —P(═O)(OR 70 )(OR 70 ).

›Embodiment 397

The compound of any of Embodiments 1-392, wherein R 39 , R 49 , R 59 and R 69 at each occurrence is independently chosen from C 1-6 alkyl optionally substituted by 1-3 R 79 , C 2-6 alkenyl optionally substituted by 1-3 R 79 , C 2-6 alkynyl optionally substituted by 1-3 R 79 , C 6-10 aryl optionally substituted by 1-3 R 79 , C 7-11 arylalkyl optionally substituted by 1-3 R 79 , C 3-10 cycloalkyl optionally substituted by 1-3 R 79 , 3-10 membered heterocycloalkyl optionally substituted by 1-3 R 79 , 5-10 membered heteroaryl optionally substituted by 1-3 R 79 , halogen, —CN, —C(═O)R 70 , —C(═O)OR 70 , —C(═O)NR 72 R 73 , —NC, —NO 2 , —NR 72 R 73 , —NR 74 NR 72 R 73 , —NR 74 OR 76 , —NR 74 C(═O)R 70 , —NR 74 C(═O)OR 71 , —NR 74 C(═O)NR 72 R 73 , —NR 74 S(═O) 2 R 71 , —NR 74 S(═O) 2 NR 72 R 73 , —OR 70 , ═O, —OCN, —OC(═O)R 70 , —OC(═O)NR 72 R 73 , —OC(═O)OR 70 , —OS(═O) 2 NR 72 R 73 , —Si(R 74 ) 3 , —SCN, —S(═O) n R 70 , —S(═O) 2 NR 72 R 73 , —S(═O)NR 72 R 73 , —P(═O)R 78 R 78 , —P(═O)(NR 72 R 73 )(NR 72 R 73 ), and —P(═O)(OR 70 )(OR 70 ).

›Embodiment 398

The compound of any of Embodiments 1-392, wherein R 39 , R 49 , R 59 and R 69 at each occurrence is independently chosen from C 1-6 alkyl optionally substituted by 1-3 R 79 , C 2-6 alkenyl optionally substituted by 1-3 R 79 , C 2-6 alkynyl optionally substituted by 1-3 R 79 , C 6-10 aryl optionally substituted by 1-3 R 79 , C 7-11 arylalkyl optionally substituted by 1-3 R 79 , C 3-10 cycloalkyl optionally substituted by 1-3 R 79 , 3-10 membered heterocycloalkyl optionally substituted by 1-3 R 79 , 5-10 membered heteroaryl optionally substituted by 1-3 R 79 , halogen, —CN, —C(═O)R 70 , —C(═O)OR 70 , —C(═O)NR 72 R 73 , —NO 2 , —NR 72 R 73 , —NR 74 OR 76 , —NR 74 C(═O)R 70 , —NR 74 C(═O)OR 71 , —NR 74 C(═O)NR 72 R 73 , —NR 74 S(═O) 2 R 71 , —NR 74 S(═O) 2 NR 72 R 73 , —OR 70 , ═O, —OC(═O)R 70 , —OC(═O)NR 72 R 73 , —OS(═O) 2 NR 72 R 73 , —S(═O) n R 70 , and —S(═O) 2 NR 72 R 73 .

›Embodiment 399

The compound of any of Embodiments 1-392, wherein R 39 , R 49 , R 59 and R 69 at each occurrence is independently chosen from C 1-6 alkyl optionally substituted by 1-3 R 79 , C 2-6 alkenyl optionally substituted by 1-3 R 79 , C 2-6 alkynyl optionally substituted by 1-3 R 79 , C 6-10 aryl optionally substituted by 1-3 R 79 , C 7-11 arylalkyl optionally substituted by 1-3 R 79 , C 3-10 cycloalkyl optionally substituted by 1-3 R 79 , 3-10 membered heterocycloalkyl optionally substituted by 1-3 R 79 , 5-10 membered heteroaryl optionally substituted by 1-3 R 79 , halogen, —CN, —C(═O)R 70 , —C(═O)OR 70 , —C(═O)NR 72 R 73 , —NO 2 , —NR 72 R 73 , —NR 74 C(═O)R 70 , —NR 74 C(═O)NR 72 R 73 , —NR 74 S(═O) 2 R 71 , —OR 70 , ═O, —S(═O) n R 70 , and —S(═O) 2 NR 72 R 73 .

›Embodiment 400

The compound of any of Embodiments 1-392, wherein R 39 , R 49 , R 59 and R 69 at each occurrence is independently chosen from C 1-6 alkyl optionally substituted by 1-3 R 79 , C 6-10 aryl optionally substituted by 1-3 R 79 , C 7-11 arylalkyl optionally substituted by 1-3 R 79 , C 3-10 cycloalkyl optionally substituted by 1-3 R 79 , 3-10 membered heterocycloalkyl optionally substituted by 1-3 R 79 , 5-10 membered heteroaryl optionally substituted by 1-3 R 79 , halogen, —CN, —C(═O)R 70 , —C(═O)OR 70 , —C(═O)NR 72 R 73 , —NO 2 , —NR 72 R 73 , —NR 74 C(═O)R 70 , —NR 74 C(═O)NR 72 R 73 , —NR 74 S(═O) 2 R 71 , —OR 70 , ═O, —S(═O) n R 70 , and —S(═O) 2 NR 72 R 73 .

›Embodiment 401

The compound of any of Embodiments 1-392, wherein R 39 , R 49 , R 59 and R 69 at each occurrence is independently chosen from C 1-6 alkyl optionally substituted by 1-3 R 79 , C 6-10 aryl optionally substituted by 1-3 R 79 , 3-10 membered heterocycloalkyl optionally substituted by 1-3 R 79 , 5-10 membered heteroaryl optionally substituted by 1-3 R 79 , —CN, and —C(═O)R 70 .

›Embodiment 402

The compound of any of Embodiments 1-392, wherein R 39 , R 49 , R 59 and R 69 at each occurrence is independently chosen from C 1-6 alkyl optionally substituted by 1-3 R 79 , phenyl optionally substituted by 1-3 R 79 , 5-6 membered heterocycloalkyl optionally substituted by 1-3 R 79 , 5-9 membered heteroaryl optionally substituted by 1-3 R 79 , —CN, and —C(═O)R 70 .

›Embodiment 403

The compound of any of Embodiments 1-392, wherein R 39 , R 49 , R 59 and R 69 at each occurrence is independently chosen from C 1-6 alkyl optionally substituted by 1 R 79 , phenyl, 6 membered heterocycloalkyl optionally substituted by 1 R 79 , 5-9 membered heteroaryl optionally substituted by 1-3 R 79 , —CN, and —C(═O)R 70 .

›Embodiment 404

The compound of any of Embodiments 1-392, wherein R 39 at each occurrence is independently chosen from C 1-6 alkyl and 5-9 membered heteroaryl optionally substituted by 1-3 R 79 ; R 59 and R 69 at each occurrence is independently C 1-6 alkyl; R 49 at each occurrence is independently chosen from C 1-6 alkyl optionally substituted by 1 R 79 , phenyl, 6 membered heterocycloalkyl optionally substituted by 1 R 79 , 5 membered heteroaryl optionally substituted by 1-3 R 79 , —CN, and —C(═O)R 70 .

›Embodiment 405

The compound of any of Embodiments 1-392, wherein R 39 , R 49 , R 59 and R 69 at each occurrence is independently chosen from C 1-6 alkyl, phenyl, 5-6 membered heterocycloalkyl, 5-9 membered heteroaryl, —CN, and —C(═O)R 70 .

›Embodiment 406

The compound of any of Embodiments 1-392, wherein R 39 , R 49 , R 59 and R 69 at each occurrence is independently chosen from C 1-6 alkyl, phenyl, 5-6 membered heterocycloalkyl, and 5-9 membered heteroaryl.

›Embodiment 407

The compound of any of Embodiments 1-392, wherein R 39 , R 49 , R 59 and R 69 at each occurrence is independently chosen from C 1-6 alkyl optionally substituted by 1-13 R 79 .

›Embodiment 408

The compound of any of Embodiments 1-392, wherein R 39 , R 49 , R 59 and R 69 at each occurrence is independently chosen from C 1-6 alkyl optionally substituted by 1-6 R 79 .

›Embodiment 409

The compound of any of Embodiments 1-392, wherein R 39 , R 49 , R 59 and R 69 at each occurrence is independently chosen from C 1-6 alkyl optionally substituted by 1-3 R 79 .

›Embodiment 410

The compound of any of Embodiments 1-392, wherein R 39 , R 49 , R 59 and R 69 at each occurrence is independently C 1-6 alkyl.

›Embodiment 411

The compound of any of Embodiments 1-410, wherein R 70 , R 71 , R 74 , R 75 , R 76 and R 77 at each occurrence is independently chosen from H, C 1-6 alkyl optionally substituted by 1-13 R 89 , C 2-6 alkenyl optionally substituted by 1-11 R 89 , C 2-6 alkynyl optionally substituted by 1-9 R 89 , C 6-11 aryl optionally substituted by 1-11 R 89 , C 7-16 arylalkyl optionally substituted by 1-19 R 89 , C 3-11 cycloalkyl optionally substituted by 1-21 R 89 , C 4-17 cycloalkylalkyl optionally substituted by 1-32 R 89 , 3-15 membered heterocycloalkyl optionally substituted by 1-28 R 89 , 4-21 membered heterocycloalkylalkyl optionally substituted by 1-40 R 89 , 5-15 membered heteroaryl optionally substituted by 1-15 R 89 , and 6-21 membered heteroarylalkyl optionally substituted by 1-27 R 89 .

›Embodiment 412

The compound of any of Embodiments 1-410, wherein R 70 , R 71 , R 74 , R 75 , R 76 and R 77 at each occurrence is independently chosen from H, C 1-6 alkyl optionally substituted by 1-6 R 89 , C 2-6 alkenyl optionally substituted by 1-6 R 89 , C 2-6 alkynyl optionally substituted by 1-6 R 89 , C 6-10 aryl optionally substituted by 1-6 R 89 , C 7-11 arylalkyl optionally substituted by 1-6 R 89 , C 3-10 cycloalkyl optionally substituted by 1-6 R 89 , 3-10 membered heterocycloalkyl optionally substituted by 1-6 R 89 , and 5-10 membered heteroaryl optionally substituted by 1-6 R 89 .

›Embodiment 413

The compound of any of Embodiments 1-410, wherein R 70 , R 71 , R 74 , R 75 , R 76 and R 77 at each occurrence is independently chosen from H, C 1-6 alkyl optionally substituted by 1-3 R 89 , C 2-6 alkenyl optionally substituted by 1-3 R 89 , C 2-6 alkynyl optionally substituted by 1-3 R 89 , C 6-10 aryl optionally substituted by 1-3 R 89 , C 7-11 arylalkyl optionally substituted by 1-3 R 89 , C 3-10 cycloalkyl optionally substituted by 1-3 R 89 , 3-10 membered heterocycloalkyl optionally substituted by 1-3 R 89 , and 5-10 membered heteroaryl optionally substituted by 1-3 R 89 .

›Embodiment 414

The compound of any of Embodiments 1-410, wherein R 70 , R 71 , R 74 , R 75 , R 76 and R 77 at each occurrence is independently chosen from H, C 1-6 alkyl optionally substituted by 1-3 R 89 , C 6-10 aryl optionally substituted by 1-3 R 89 , C 7-11 arylalkyl optionally substituted by 1-3 R 89 , C 3-10 cycloalkyl optionally substituted by 1-3 R 89 , 3-10 membered heterocycloalkyl optionally substituted by 1-3 R 89 , and 5-10 membered heteroaryl optionally substituted by 1-3 R 89 .

›Embodiment 415

The compound of any of Embodiments 1-410, wherein R 70 , R 71 , R 74 , R 75 , R 76 and R 77 at each occurrence is independently chosen from H, C 1-6 alkyl, C 6-10 aryl, C 7-11 arylalkyl, C 3-10 cycloalkyl, 3-10 membered heterocycloalkyl, and 5-10 membered heteroaryl.

›Embodiment 416

The compound of any of Embodiments 1-410, wherein R 70 , R 71 , R 74 , R 75 , R 76 and R 77 at each occurrence is independently chosen from H, C 1-6 alkyl optionally substituted by 1-3 R 89 , phenyl optionally substituted by 1-3 R 89 , benzyl optionally substituted by 1-3 R 89 , C 5-6 cycloalkyl optionally substituted by 1-3 R 89 , 5-6 membered heterocycloalkyl optionally substituted by 1-3 R 89 , and 5-6 membered heteroaryl optionally substituted by 1-3 R 89 .

›Embodiment 417

The compound of any of Embodiments 1-410, wherein R 70 , R 71 , R 74 , R 75 , R 76 and R 77 at each occurrence is independently chosen from H, C 1-6 alkyl, phenyl, benzyl, C 5-6 cycloalkyl, 5-6 membered heterocycloalkyl, and 5-6 membered heteroaryl.

›Embodiment 418

The compound of any of Embodiments 1-410, wherein R 70 , R 71 , R 74 , R 75 , R 76 and R 77 at each occurrence is independently chosen from H, C 1-6 alkyl, phenyl, benzyl, C 5-6 cycloalkyl, 5-6 membered heterocycloalkyl optionally substituted by 1-3 R 89 , and 5-6 membered heteroaryl.

›Embodiment 419

The compound of any of Embodiments 1-410, wherein R 70 , R 71 , R 74 , R 75 , R 76 and R 77 at each occurrence is independently chosen from H, C 1-6 alkyl, phenyl, benzyl, C 5-6 cycloalkyl, 5-6 membered heterocycloalkyl optionally substituted by 1 R 89 , and 5-6 membered heteroaryl.

›Embodiment 420

The compound of any of Embodiments 1-410, wherein R 70 , R 71 , R 74 , R 75 , R 76 and R 77 at each occurrence is independently chosen from H, C 1-6 alkyl, and 5-6 membered heterocycloalkyl optionally substituted by 1-3 R 89 .

›Embodiment 421

The compound of any of Embodiments 1-410, wherein R 70 , R 71 , R 74 , R 75 , R 76 and R 77 at each occurrence is independently chosen from H, C 1-6 alkyl, and 5-6 membered heterocycloalkyl optionally substituted by C 1-6 alkyl.

›Embodiment 422

The compound of any of Embodiments 1-410, wherein R 70 , R 71 , R 74 , R 75 , R 76 and R 77 at each occurrence is independently chosen from H, C 1-6 alkyl, and 5-6 membered heterocycloalkyl.

›Embodiment 423

The compound of any of Embodiments 1-410, wherein R 70 at each occurrence is independently chosen from H, C 1-6 alkyl, and 5-6 membered heterocycloalkyl optionally substituted by 1-3 R 89 ; R 71 , R 74 , R 75 , R 76 and R 77 at each occurrence is H.

›Embodiment 424

The compound of any of Embodiments 1-410, wherein R 70 at each occurrence is independently chosen from H, C 1-6 alkyl, and 5-6 membered heterocycloalkyl optionally substituted by C 1-6 alkyl; R 71 , R 74 , R 75 , R 76 and R 77 at each occurrence is H.

›Embodiment 425

The compound of any of Embodiments 1-410, wherein R 70 at each occurrence is independently chosen from H, C 1-6 alkyl, and 5-6 membered heterocycloalkyl; R 71 , R 74 , R 75 , R 76 and R 77 at each occurrence is H.

›Embodiment 426

The compound of any of Embodiments 1-410, wherein R 70 , R 71 , R 74 , R 75 , R 76 and R 77 at each occurrence is independently chosen from H and C 1-6 alkyl.

›Embodiment 427

The compound of any of Embodiments 1-410, wherein R 70 , R 71 , R 74 , R 75 , R 76 and R 77 at each occurrence is H.

›Embodiment 428

The compound of any of Embodiments 1-427, wherein R 72 and R 73 at each occurrence is independently chosen from H, C 1-6 alkyl optionally substituted by 1-13 R 99 , C 2-6 alkenyl optionally substituted by 1-11 R 99 , C 2-6 alkynyl optionally substituted by 1-9 R 99 , C 6-11 aryl optionally substituted by 1-11 R 99 , C 7-16 arylalkyl optionally substituted by 1-19 R 99 , C 3-11 cycloalkyl optionally substituted by 1-21 R 99 , C 4-17 cycloalkylalkyl optionally substituted by 1-32 R 99 , 3-15 membered heterocycloalkyl optionally substituted by 1-28 R 99 , 4-21 membered heterocycloalkylalkyl optionally substituted by 1-40 R 99 , 5-15 membered heteroaryl optionally substituted by 1-15 R 99 , and 6-21 membered heteroarylalkyl optionally substituted by 1-27 R 99 ; alternatively, any R 72 and R 73 may form, together with the nitrogen atom to which they are attached, a 3-15 membered heterocycloalkyl optionally substituted by 1-28 R 109 or a 5-15 membered heteroaryl optionally substituted by 1-15 R 109 .

›Embodiment 429

The compound of any of Embodiments 1-427, wherein R 72 and R 73 at each occurrence is independently chosen from H, C 1-6 alkyl optionally substituted by 1-6 R 99 , C 2-6 alkenyl optionally substituted by 1-6 R 99 , C 2-6 alkynyl optionally substituted by 1-6 R 99 , C 6-11 aryl optionally substituted by 1-6 R 99 , C 7-16 arylalkyl optionally substituted by 1-6 R 99 , C 3-11 cycloalkyl optionally substituted by 1-6 R 99 , C 4-17 cycloalkylalkyl optionally substituted by 1-6 R 99 , 3-15 membered heterocycloalkyl optionally substituted by 1-6 R 99 , 4-21 membered heterocycloalkylalkyl optionally substituted by 1-6 R 99 , 5-15 membered heteroaryl optionally substituted by 1-6 R 99 , and 6-21 membered heteroarylalkyl optionally substituted by 1-6 R 99 ; alternatively, any R 72 and R 73 may form, together with the nitrogen atom to which they are attached, a 3-15 membered heterocycloalkyl optionally substituted by 1-6 R 109 or a 5-15 membered heteroaryl optionally substituted by 1-6 R 109 .

›Embodiment 430

The compound of any of Embodiments 1-427, wherein R 72 and R 73 at each occurrence is independently chosen from H, C 1-6 alkyl optionally substituted by 1-3 R 99 , C 2-6 alkenyl optionally substituted by 1-3 R 99 , C 2-6 alkynyl optionally substituted by 1-3 R 99 , C 6-11 aryl optionally substituted by 1-3 R 99 , C 7-16 arylalkyl optionally substituted by 1-3 R 99 , C 3-11 cycloalkyl optionally substituted by 1-3 R 99 , C 4-17 cycloalkylalkyl optionally substituted by 1-3 R 99 , 3-15 membered heterocycloalkyl optionally substituted by 1-3 R 99 , 4-21 membered heterocycloalkylalkyl optionally substituted by 1-3 R 99 , 5-15 membered heteroaryl optionally substituted by 1-3 R 99 , and 6-21 membered heteroarylalkyl optionally substituted by 1-3 R 99 ; alternatively, any R 72 and R 73 may form, together with the nitrogen atom to which they are attached, a 3-15 membered heterocycloalkyl optionally substituted by 1-3 R 109 or a 5-15 membered heteroaryl optionally substituted by 1-3 R 109 .

›Embodiment 431

The compound of any of Embodiments 1-427, wherein R 72 and R 73 at each occurrence is independently chosen from H, C 1-6 alkyl optionally substituted by 1-3 R 99 , C 2-6 alkenyl optionally substituted by 1-3 R 99 , C 2-6 alkynyl optionally substituted by 1-3 R 99 , C 6-10 aryl optionally substituted by 1-3 R 99 , C 7-11 arylalkyl optionally substituted by 1-3 R 99 , C 3-10 cycloalkyl optionally substituted by 1-3 R 99 , 3-10 membered heterocycloalkyl optionally substituted by 1-3 R 99 , and 5-10 membered heteroaryl optionally substituted by 1-3 R 99 ; alternatively, any R 72 and R 73 may form, together with the nitrogen atom to which they are attached, a 3-10 membered heterocycloalkyl optionally substituted by 1-3 R 109 or a 5-10 membered heteroaryl optionally substituted by 1-3 R 109 .

›Embodiment 432

The compound of any of Embodiments 1-427, wherein R 72 and R 73 at each occurrence is independently chosen from H, C 1-6 alkyl optionally substituted by 1-3 R 99 , C 6-10 aryl optionally substituted by 1-3 R 99 , C 7-11 arylalkyl optionally substituted by 1-3 R 99 , C 3-10 cycloalkyl optionally substituted by 1-3 R 99 , 3-10 membered heterocycloalkyl optionally substituted by 1-3 R 99 , and 5-10 membered heteroaryl optionally substituted by 1-3 R 99 ; alternatively, any R 72 and R 73 may form, together with the nitrogen atom to which they are attached, a 3-10 membered heterocycloalkyl optionally substituted by 1-3 R 109 or a 5-10 membered heteroaryl optionally substituted by 1-3 R 109 .

›Embodiment 433

The compound of any of Embodiments 1-427, wherein R 72 and R 73 at each occurrence is independently chosen from H, C 1-6 alkyl optionally substituted by 1-3 R 99 , phenyl optionally substituted by 1-3 R 99 , benzyl optionally substituted by 1-3 R 99 , C 5-6 cycloalkyl optionally substituted by 1-3 R 99 , 5-6 membered heterocycloalkyl optionally substituted by 1-3 R 99 , and 5-6 membered heteroaryl optionally substituted by 1-3 R 99 ; alternatively, any R 72 and R 73 may form, together with the nitrogen atom to which they are attached, a 5-6 membered heterocycloalkyl optionally substituted by 1-3 R 109 or a 5-6 membered heteroaryl optionally substituted by 1-3 R 109 .

›Embodiment 434

The compound of any of Embodiments 1-427, wherein R 72 and R 73 at each occurrence is independently chosen from H, C 1-6 alkyl optionally substituted by 1-3 R 99 , phenyl optionally substituted by 1-3 R 99 , benzyl optionally substituted by 1-3 R 99 , C 5-6 cycloalkyl optionally substituted by 1-3 R 99 , 5-6 membered heterocycloalkyl optionally substituted by 1-3 R 99 , and 5-6 membered heteroaryl optionally substituted by 1-3 R 99 .

›Embodiment 435

The compound of any of Embodiments 1-427, wherein R 72 and R 73 at each occurrence is independently chosen from H, C 1-6 alkyl, phenyl, benzyl, C 5-6 cycloalkyl, 5-6 membered heterocycloalkyl, and 5-6 membered heteroaryl; alternatively, any R 72 and R 73 may form, together with the nitrogen atom to which they are attached, a 5-6 membered heterocycloalkyl or a 5-6 membered heteroaryl.

›Embodiment 436

The compound of any of Embodiments 1-427, wherein R 72 and R 73 at each occurrence is independently chosen from H, C 1-6 alkyl, phenyl, benzyl, C 5-6 cycloalkyl, 5-6 membered heterocycloalkyl, and 5-6 membered heteroaryl.

›Embodiment 437

The compound of any of Embodiments 1-427, wherein R 72 and R 73 at each occurrence is independently chosen from H, C 1-6 alkyl optionally substituted by 1-3 R 99 , phenyl optionally substituted by 1-3 R 99 , and benzyl optionally substituted by 1-3 R 99 .

›Embodiment 438

The compound of any of Embodiments 1-427, wherein R 72 and R 73 at each occurrence is independently chosen from H and C 1-6 alkyl optionally substituted by 1-3 R 99 .

›Embodiment 439

The compound of any of Embodiments 1-427, wherein R 72 and R 73 at each occurrence is independently chosen from H, C 1-6 alkyl, phenyl, and benzyl.

›Embodiment 440

The compound of any of Embodiments 1-427, wherein R 72 and R 73 at each occurrence is independently chosen from H and C 1-6 alkyl.

›Embodiment 441

The compound of any of Embodiments 1-427, wherein R 72 and R 73 at each occurrence is H.

›Embodiment 442

The compound of any of Embodiments 1-441, wherein R 78 at each occurrence is independently chosen from C 1-6 alkyl optionally substituted by 1-13 R 89 , C 2-6 alkenyl optionally substituted by 1-11 R 89 , C 2-6 alkynyl optionally substituted by 1-9 R 89 , C 6-11 aryl optionally substituted by 1-11 R 89 , C 7-16 arylalkyl optionally substituted by 1-19 R 89 , C 3-11 cycloalkyl optionally substituted by 1-21 R 89 , C 4-17 cycloalkylalkyl optionally substituted by 1-32 R 89 , 3-15 membered heterocycloalkyl optionally substituted by 1-28 R 89 , 4-21 membered heterocycloalkylalkyl optionally substituted by 1-40 R 89 , 5-15 membered heteroaryl optionally substituted by 1-15 R 89 , and 6-21 membered heteroarylalkyl optionally substituted by 1-27 R 89 .

›Embodiment 443

The compound of any of Embodiments 1-441, wherein R 78 at each occurrence is independently chosen from C 1-6 alkyl optionally substituted by 1-3 R 89 , C 2-6 alkenyl optionally substituted by 1-3 R 89 , C 2-6 alkynyl optionally substituted by 1-3 R 89 , C 6-11 aryl optionally substituted by 1-3 R 89 , C 7-16 arylalkyl optionally substituted by 1-3 R 89 , C 3-11 cycloalkyl optionally substituted by 1-3 R 89 , C 4-17 cycloalkylalkyl optionally substituted by 1-3 R 89 , 3-15 membered heterocycloalkyl optionally substituted by 1-3 R 89 , 4-21 membered heterocycloalkylalkyl optionally substituted by 1-3 R 89 , 5-15 membered heteroaryl optionally substituted by 1-3 R 89 , and 6-21 membered heteroarylalkyl optionally substituted by 1-3 R 89 .

›Embodiment 444

The compound of any of Embodiments 1-441, wherein R 78 at each occurrence is independently chosen from C 1-6 alkyl optionally substituted by 1-3 R 89 , C 2-6 alkenyl optionally substituted by 1-3 R 89 , C 2-6 alkynyl optionally substituted by 1-3 R 89 , C 6-10 aryl optionally substituted by 1-3 R 89 , C 7-11 arylalkyl optionally substituted by 1-3 R 89 , C 3-10 cycloalkyl optionally substituted by 1-3 R 89 , 3-10 membered heterocycloalkyl optionally substituted by 1-3 R 89 , and 5-10 membered heteroaryl optionally substituted by 1-3 R 89 .

›Embodiment 445

The compound of any of Embodiments 1-441, wherein R 78 at each occurrence is independently chosen from C 1-6 alkyl optionally substituted by 1-3 R 89 , C 6-10 aryl optionally substituted by 1-3 R 89 , C 7-11 arylalkyl optionally substituted by 1-3 R 89 , C 3-10 cycloalkyl optionally substituted by 1-3 R 89 , 3-10 membered heterocycloalkyl optionally substituted by 1-3 R 89 , and 5-10 membered heteroaryl optionally substituted by 1-3 R 89 .

›Embodiment 446

The compound of any of Embodiments 1-441, wherein R 78 at each occurrence is independently chosen from C 1-6 alkyl optionally substituted by 1-3 R 89 , phenyl optionally substituted by 1-3 R 89 , benzyl optionally substituted by 1-3 R 89 , C 3-6 cycloalkyl optionally substituted by 1-3 R 89 , 3-6 membered heterocycloalkyl optionally substituted by 1-3 R 89 , and 5-6 membered heteroaryl optionally substituted by 1-3 R 89 .

›Embodiment 447

The compound of any of Embodiments 1-441, wherein R 78 at each occurrence is independently chosen from C 1-6 alkyl, phenyl, benzyl, C 3-6 cycloalkyl, 3-6 membered heterocycloalkyl, and 5-6 membered heteroaryl.

›Embodiment 448

The compound of any of Embodiments 1-441, wherein R 78 at each occurrence is independently chosen from C 1-6 alkyl optionally substituted by 1-3 R 89 , phenyl optionally substituted by 1-3 R 89 , and benzyl optionally substituted by 1-3 R 89 .

›Embodiment 449

The compound of any of Embodiments 1-441, wherein R 78 at each occurrence is independently chosen from C 1-6 alkyl, phenyl, and benzyl.

›Embodiment 450

The compound of any of Embodiments 1-441, wherein R 78 at each occurrence is C 1-6 alkyl optionally substituted by 1-3 R 89 .

›Embodiment 451

The compound of any of Embodiments 1-441, wherein R 78 at each occurrence is C 1-6 alkyl.

›Embodiment 452

The compound of any of Embodiments 1-451, wherein R 79 , R 89 , R 99 and R 109 at each occurrence is independently chosen from C 1-6 alkyl optionally substituted by 1-13 halogen, C 2-6 alkenyl, C 2-6 alkynyl, C 6-11 aryl, C 7-16 arylalkyl, C 3-11 cycloalkyl, C 4-17 cycloalkylalkyl, 3-15 membered heterocycloalkyl, 4-21 membered heterocycloalkylalkyl, 5-15 membered heteroaryl, 6-21 membered heteroarylalkyl, halogen, —CN, —C(═O)R 110 , —C(═O)OR 110 , —C(═O)NR 110 R 110 , —C(═O)C(═O)R 110 , —C(═NR 110 )R 110 , —C(═NR 110 )NR 110 R 110 , —C(═NOH)NR 110 R 110 , —C(═NOR 110 )R 110 , —C(═NNR 110 R 110 )R 110 , —C(═NNR 110 C(═O)R 110 )R 110 , —C(═NNR 110 C(═O)OR 110 )R 110 , —C(═S)NR 110 R 110 , —NC, —NO 2 , —NR 110 R 110 , —NR 110 NR 110 R 110 , —N═NR 110 , ═NR 110 , ═NOR 110 , —NR 110 OR 110 , —NR 110 C(═O)R 110 , —NR 110 C(═O)C(═O)R 110 , —NR 110 C(═O)OR 110 , —NR 110 C(═O)C(═O)OR 110 , —NR 110 C(═O)NR 110 R 110 , —NR 110 C(═O)NR 110 C(═O)R 110 , —NR 110 C(═O)NR 110 C(═O)OR 110 , —NR 110 C(═NR 110 )NR 110 R 110 , —NR 110 C(═O)C(═O)NR 110 R 110 , —NR 110 C(═S)R 110 , —NR 110 C(═S)OR 110 , —NR 110 C(═S)NR 110 R 110 , —NR 110 S(═O) 2 R 110 , —NR 110 S(═O) 2 NR 110 R 110 , —NR 110 P(═O)R 111 R 111 , —NR 110 P(═O)(NR 110 R 110 )(NR 110 R 110 ), —NR 110 P(═O)(OR 110 )(OR 110 ), —NR 110 P(═O)(SR 110 )(SR 110 ), —OR 110 , ═O, —OCN, —OC(═O)R 110 , —OC(═O)NR 110 R 110 , —OC(═O)OR 110 , —OC(═NR 110 )NR 110 R 110 , —OS(═O)R 110 , —OS(═O) 2 R 110 , —OS(═O) 2 OR 110 , —OS(═O) 2 NR 110 R 110 , —OP(═O)R 111 R 111 , —OP(═O)(NR 110 R 110 )(NR 110 R 110 ), —OP(═O)(OR 110 )(OR 110 ), —OP(═O)(SR 110 )(SR 110 ), —Si(R 110 ) 3 , —SCN, ═S, —S(═O) n R 110 , —S(═O) 2 OR 110 , —SO 3 R 110 , —S(═O) 2 NR 110 R 110 , —S(═O)NR 110 R 110 , —SP(═O)R 111 R 111 , —SP(═O)(NR 110 R 110 )(NR 110 R 110 ), —SP(═O)(OR 110 )(OR 110 ), —SP(═O)(SR 110 )(SR 110 ), —P(═O)R 111 R 111 , —P(═O)(NR 110 R 110 )(NR 110 R 110 ), —P(═O)(OR 110 )(OR 110 ), and —P(═O)(SR 110 )(SR 110 ).

›Embodiment 453

The compound of any of Embodiments 1-451, wherein R 79 , R 89 , R 99 and R 109 at each occurrence is independently chosen from C 1-6 alkyl optionally substituted by 1-6 halogen, C 2-6 alkenyl, C 2-6 alkynyl, C 6-11 aryl, C 7-16 arylalkyl, C 3-11 cycloalkyl, C 4-17 cycloalkylalkyl, 3-15 membered heterocycloalkyl, 4-15 membered heterocycloalkylalkyl, 5-15 membered heteroaryl, 6-15 membered heteroarylalkyl, halogen, —CN, —C(═O)R 110 , —C(═O)OR 110 , —C(═O)NR 110 R 110 , —C(═O)C(═O)R 110 , —NC, —NO 2 , —NR 110 R 110 , —NR 110 NR 110 R 110 , —NR 110 OR 110 , —NR 110 C(═O)R 110 , —NR 110 C(═O)C(═O)R 110 , —NR 110 C(═O)OR 110 , —NR 110 C(═O)C(═O)OR 110 , —NR 110 C(═O)NR 110 R 110 , —NR 110 C(═O)NR 110 C(═O)R 110 , —NR 110 C(═O)NR 110 C(═O)OR 110 , —NR 110 C(═O)C(═O)NR 110 R 110 , —NR 110 S(═O) 2 R 110 , —NR 110 S(═O) 2 NR 110 R 110 , —NR 110 P(═O)R 111 R 111 , —NR 110 P(═O)(NR 110 R 110 )(NR 110 R 110 ), —NR 110 P(═O)(OR 110 )(OR 110 ), —OR 110 , ═O, —OCN, —OC(═O)R 110 , —OC(═O)NR 110 R 110 , —OC(═O)OR 110 , —OS(═O)R 110 , —OS(═O) 2 R 110 , —OS(═O) 2 OR 110 , —OS(═O) 2 NR 110 R 110 , —OP(═O)R 111 R 111 , —OP(═O)(NR 110 R 110 )(NR 110 R 110 ), —OP(═O)(OR 110 )(OR 110 ), —Si(R 110 ) 3 —SCN, ═S, —S(═O) n R 110 , —S(═O) 2 OR 110 , —SO 3 R 110 , —S(═O) 2 NR 110 R 110 , —S(═O)NR 110 R 110 , —P(═O)R 111 R 111 , —P(═O)(NR 110 R 110 )(NR 110 R 110 ), and —P(═O)(OR 110 )(OR 110 ).

›Embodiment 454

The compound of any of Embodiments 1-451, wherein R 79 , R 89 , R 99 and R 109 at each occurrence is independently chosen from C 1-6 alkyl optionally substituted by 1-3 halogen, C 2-6 alkenyl, C 2-6 alkynyl, C 6-10 aryl, C 7-11 arylalkyl, C 3-10 cycloalkyl, C 4-17 cycloalkylalkyl, 3-10 membered heterocycloalkyl, 4-10 membered heterocycloalkylalkyl, 5-10 membered heteroaryl, 6-10 membered heteroarylalkyl, halogen, —CN, —C(═O)R 110 , —C(═O)OR 110 , —C(═O)NR 110 R 110 , —NC, —NO 2 , —NR 110 R 110 , —NR 110 OR 110 , —NR 110 C(═O)R 110 , —NR 110 C(═O)OR 110 , —NR 110 C(═O)NR 110 R 110 , —NR 110 C(═O)NR 110 C(═O)R 110 , —NR 110 S(═O) 2 R 110 , —NR 110 S(═O) 2 NR 110 R 110 , —NR 110 P(═O)R 111 R 111 , —NR 110 P(═O)(NR 110 R 110 )(NR 110 R 110 ), —NR 110 P(═O)(OR 110 )(OR 110 ), —OR 110 , ═O, —OCN, —OC(═O)R 110 , —OC(═O)NR 110 R 110 , —OS(═O) 2 NR 110 R 110 , —OP(═O)R 111 R 111 , —OP(═O)(NR 110 R 110 )(NR 110 R 110 ), —SCN, ═S, —S(═O) n R 110 , —S(═O) 2 NR 110 R 110 , —S(═O)NR 110 R 110 , —P(═O)R 111 R 111 , and —P(═O)(NR 110 R 110 )(NR 110 R 110 ).

›Embodiment 455

The compound of any of Embodiments 1-451, wherein R 79 , R 89 , R 99 and R 109 at each occurrence is independently chosen from C 1-6 alkyl optionally substituted by 1-3 halogen, C 2-6 alkenyl, C 2-6 alkynyl, C 6-10 aryl, C 7-11 arylalkyl, C 3-10 cycloalkyl, 3-10 membered heterocycloalkyl, 5-10 membered heteroaryl, halogen, —CN, —C(═O)R 110 , —C(═O)OR 110 , —C(═O)NR 110 R 110 , —NO 2 , —NR 110 R 110 , —NR 110 R 110 , —NR 110 C(═O)R 110 , —NR 110 C(═O)NR 110 R 110 , —NR 110 S(═O) 2 R 110 , —NR 110 S(═O) 2 NR 110 R 110 , —OR 110 , ═O, —OCN, —OC(═O)R 110 , —S(═O) n R 110 , —S(═O) 2 NR 110 R 110 , and —S(═O)NR 110 R 110 .

›Embodiment 456

The compound of any of Embodiments 1-451, wherein R 79 , R 89 , R 99 and R 109 at each occurrence is independently chosen from C 1-6 alkyl optionally substituted by 1-3 halogen, C 2-6 alkenyl, C 2-6 alkynyl, phenyl, benzyl, C 3-6 cycloalkyl, 3-6 membered heterocycloalkyl, 5-6 membered heteroaryl, halogen, —CN, —C(═O)R 110 , —C(═O)OR 110 , —C(═O)NR 110 R 110 , —NO 2 , —NR 110 R 110 , —NR 110 C(═O)R 110 , —NR 110 C(═O)NR 110 R 110 , —NR 110 S(═O) 2 R 110 , —NR 110 S(═O) 2 NR 110 R 110 , —OR 110 , ═O, —S(═O) n R 110 , and —S(═O) 2 NR 110 R 110 .

›Embodiment 457

The compound of any of Embodiments 1-451, wherein R 79 , R 89 , R 99 and R 109 at each occurrence is independently chosen from C 1-6 alkyl optionally substituted by 1-3 halogen, C 2-6 alkenyl, C 2-6 alkynyl, phenyl, benzyl, C 3-6 cycloalkyl, 3-6 membered heterocycloalkyl, 5-6 membered heteroaryl, halogen, —CN, —C(═O)R 110 , —C(═O)OR 110 , —C(═O)NR 110 R 110 , —NR 110 R 110 , —NR 110 C(═O)R 110 , —NR 110 S(═O) 2 R 110 , —OR 110 , ═O, —S(═O) n R 110 and —S(═O) 2 NR 110 R 110 .

›Embodiment 458

The compound of any of Embodiments 1-451, wherein R 79 , R 89 , R 99 and R 109 at each occurrence is independently chosen from C 1-6 alkyl optionally substituted by 1-3 halogen, phenyl, benzyl, C 3-6 cycloalkyl, 3-6 membered heterocycloalkyl, 5-6 membered heteroaryl, halogen, —CN, —C(═O)R 110 , —C(═O)OR 110 , —C(═O)NR 110 R 110 , —NR 110 R 110 , —OR 110 , —═O, —S(═O) n R 110 , and —S(═O) 2 NR 110 R 110 .

›Embodiment 459

The compound of any of Embodiments 1-451, wherein R 79 , R 89 , R 99 and R 109 at each occurrence is independently chosen from C 1-6 alkyl optionally substituted by 1-3 halogen, halogen, and —NR 110 R 110 .

›Embodiment 460

The compound of any of Embodiments 1-451, wherein R 79 , R 89 , R 99 and R 109 at each occurrence is independently chosen from C 1-6 alkyl, halogen, and —NR 110 R 110 .

›Embodiment 461

The compound of any of Embodiments 1-451, wherein R 79 , R 89 , R 99 and R 109 at each occurrence is independently chosen from C 1-6 alkyl and —NR 110 R 110 .

›Embodiment 462

The compound of any of Embodiments 1-451, wherein R 79 , R 89 , R 99 and R 109 at each occurrence is —NR 110 R 110 .

›Embodiment 463

The compound of any of Embodiments 1-451, wherein R 79 , R 89 , R 99 and R 109 at each occurrence is C 1-6 alkyl.

›Embodiment 464

The compound of any of Embodiments 1-451, wherein R 79 at each occurrence is independently chosen from C 1-6 alkyl and —NR 110 R 110 ; R 89 , R 99 and R 109 at each occurrence is C 1-6 alkyl.

›Embodiment 465

The compound of any of Embodiments 1-451, wherein R 79 at each occurrence is independently chosen from C 1-6 alkyl and —NR 110 R 110 ; R 89 , R 99 and R 109 at each occurrence is —NR 110 R 110 .

›Embodiment 466

The compound of any of Embodiments 1-451, wherein R 79 at each occurrence is —NR 110 R 110 ; R 89 , R 99 and R 109 at each occurrence is C 1-6 alkyl.

›Embodiment 467

The compound of any of Embodiments 1-466, wherein R 110 at each occurrence is independently chosen from H, C 1-6 alkyl and C 1-6 -haloalkyl.

›Embodiment 468

The compound of any of Embodiments 1-466, wherein R 110 at each occurrence is independently chosen from H and C 1-6 alkyl.

›Embodiment 469

The compound of any of Embodiments 1-466, wherein R 110 at each occurrence is C 1-6 alkyl.

›Embodiment 470

The compound of any of Embodiments 1-466, wherein R 110 at each occurrence is H.

›Embodiment 471

The compound of any of Embodiments 1-470, wherein R 111 at each occurrence is independently chosen from C 1-6 alkyl and C 1-6 -haloalkyl.

›Embodiment 472

The compound of any of Embodiments 1-470, wherein R 111 at each occurrence is C 1-6 alkyl.

›Embodiment 473

The compound of any of Embodiments 1-470, wherein R 111 at each occurrence is C 1-6 -haloalkyl.

›Embodiment 474

The compound of any of Embodiments 1-473, wherein n at each occurrence is independently chosen from 0, 1, and 2.

›Embodiment 475

The compound of any of Embodiments 1-473, wherein n at each occurrence is independently chosen from 0 and 2.

›Embodiment 476

The compound of any of Embodiments 1-473, wherein n at each occurrence is independently chosen from 1 and 2.

›Embodiment 477

The compound of any of Embodiments 1-473, wherein n at each occurrence is independently chosen from 0 and 1.

›Embodiment 478

The compound of any of Embodiments 1-473, wherein n at each occurrence is 0.

›Embodiment 479

The compound of any of Embodiments 1-473, wherein n at each occurrence is 1.

›Embodiment 480

The compound of any of Embodiments 1-473, wherein n at each occurrence is 2.

›Embodiment 481

The compound of any of Embodiments 1-480, wherein neither R 1 , R 2 , R 3 , R 4 , R 5 , R 6 , R 7 , R 8 , R 9 , R 10 , R 11 , R 12 , R 13 , R 14 , R 15 , R 16 , R 17 , R 18 , R 19 , R 20 , R 21 , R 22 , R 23 , R 24 , R 25 , R 26 , R 27 , nor R 28 contain either of the following chemical moieties z or

wherein W is O or S, and Z is N or C.

›Embodiment 482

The compound of any of Embodiments 1-481, wherein neither R 1 , R 2 , R 3 , R 4 , R 5 , R 6 , R 7 , R 8 , R 9 , R 10 , R 11 , R 12 , R 13 , R 14 , R 15 , R 16 , R 17 , R 18 , R 19 , R 20 , R 21 , R 22 , R 23 , R 24 , R 25 , R 26 , R 27 , nor R 28 is:

(a)

where W is O or S; J is O, NH or NCH 3 ; and R 301 is hydrogen or alkyl;

(b)

where W is O or S; Y 2 is absent, N, or CH; Z is N or CH; R 302 and R 304 are independently hydrogen, hydroxyl, or an aliphatic group; provided that if R 302 and R 304 are both present, one of R 302 or R 304 must be hydroxyl and if Y 2 is absent, R 304 must be hydroxyl; and R 303 is hydrogen or aliphatic group;

(c)

where W is O or S; Y 1 and Z 1 are independently N, C or CH; or

(d)

where Z is N or CH; Y 2 is absent, N, or CH; W is O or S; R 211 and R 212 are independently selected from hydrogen or aliphatic group; R 201 , R 202 and R 203 are independently selected from hydrogen, hydroxyl, amino, halogen, alkoxy, alkylamino, dialkylamino, CF 3 , CN, NO 2 , sulfonyl, acyl, aliphatic group, substituted aliphatic group, aryl, substituted aryl, heteroaryl, substituted heteroaryl, heterocyclic, and substituted heterocyclic;

wherein for the purpose of this Embodiment, the following definitions apply: an aliphatic group is a non-aromatic moiety that may be saturated (e.g. single bond) or contain one or more units of unsaturation, e.g., double and/or triple bonds; an aliphatic group may be straight chained, branched or cyclic, contain carbon, hydrogen or, optionally, one or more heteroatoms and may be substituted or unsubstituted;

“acyl” refers to hydrogen, alkyl, partially saturated or fully saturated cycloalkyl, partially saturated or fully saturated heterocycle, aryl, and heteroaryl substituted carbonyl groups; “alkoxy” embraces linear or branched oxy-containing radicals alkyl portions of one to about twenty carbon atoms or, preferably, one to about twelve carbon atoms; and “heterocyclic” refers to saturated, partially unsaturated and unsaturated heteroatom-containing ring shaped radicals, where the heteroatoms may be selected from nitrogen, sulfur and oxygen;

›Embodiment 483

The compound of any of Embodiments 1-482, wherein A is not S.

›Embodiment 484

The compound of any of Embodiments 1-483, wherein R 1 is not —OR 20 .

›Embodiment 485

The compound of any of Embodiments 1-484, wherein R 8 is not tetrahydrofuranyl substituted by 4 or 5 R 19 .

›Embodiment 486

The compound of any of Embodiments 1-484, wherein R 8 is not

T 1 is R 39 ; T 2 , T 3 , and T 5 are independently chosen from R 30 , —C(═O)R 30 , —C(═O)NR 32 R 33 , —C(═O)OR 30 , —C(═NR 35 )NR 32 R 33 , —S(═O)R 30 , —S(═O) 2 R 30 , —S(═O) 2 OR 30 , —S(═O) 2 NR 32 R 33 , —P(═O)R 38 R 38 , —P(═O)(NR 32 R 33 )(NR 32 R 33 ), —P(═O)(OR 30 )(OR 30 ), and —P(═O)(SR 30 )(SR 30 ); and T 4 is R 19 .

›Embodiment 487

The compound of any of Embodiments 1-484, wherein R 8 is not

wherein T 1 is hydrogen, fluoro, azido, amino, hydroxyl, C 1-3 alkoxy, mercapto, or C 1-3 alkylthio; T 2 , T 3 , and T 5 are independently chosen from R 30 , —C(═O)R 30 , —C(═O)NR 32 R 33 , —C(═O)OR 30 , —C(═NR 35 )NR 32 R 33 , —S(═O)R 30 , —S(═O) 2 R 30 , —S(═O) 2 OR 30 , —S(═O) 2 NR 32 R 33 , —P(═O)R 38 R 38 , —P(═O)(NR 32 R 33 )(NR 32 R 33 ), —P(═O)(OR 30 )(OR 30 ), and —P(═O)(SR 30 )(SR 30 ); and T 4 is hydrogen, azido, methyl, hydroxymethyl, or fluoromethyl.

›Embodiment 488

The compound of any of Embodiments 1-487, wherein R 10 is not —CN.

›Embodiment 489

The compound of any of Embodiments 1-488, wherein none of R 1 and R 2 , R 1 and R 3 , R 1 and R 5 , or R 1 and R 11 , together with the atoms linking them, form a heterocycloalkyl optionally substituted by one or more R 19 or a heteroaryl optionally substituted by one ore more R 19 .

›Embodiment 490

The compound of any of Embodiments 1-488, wherein R 1 and R 11 do not, together with the atoms linking them, form a heterocycloalkyl optionally substituted by one or more R 19 or a heteroaryl optionally substituted by one or more R 19 .

›Embodiment 491

The compound of any of Embodiments 1-490, wherein neither R 7 nor R 10 is H, or neither R 8 nor R 9 is H.

›Embodiment 492

The compound of Embodiment 491, wherein neither R 7 nor R 10 is H.

›Embodiment 493

The compound of Embodiment 491, wherein neither R 8 nor R 9 is H.

›Embodiment 494

The compound of any of Embodiments 1-493, wherein neither R 3 and R 4 nor R 5 and R 6 together form ═O, ═NR 20 , ═NOR 20 , or ═S.

›Embodiment 495

The compound of any of Embodiments 1-494, wherein neither R 3 and R 4 nor R 5 and R 6 together form ═O.

›Embodiment 496

The compound of any of Embodiments 1-495, wherein

(a) when R 1 is H, R 2 is neither aryl optionally substituted by one or more R 19 nor heteroaryl optionally substituted by one or more R 19 , (b) when R 2 is H, R 1 is neither optionally substituted by one or more R 19 nor heteroaryl optionally substituted by one or more R 19 , (c) R 3 , R 4 , R 5 , and R 6 are not —NHR 22 , —NHR 23 , —SO 2 NHR 22 , —SO 2 NHR 23 , —C(═O)NHR 22 , or —C(═O)NHR 23 , wherein R 22 and R 23 are either aryl optionally substituted by one or more R 59 or heteroaryl optionally substituted by one or more R 59 , and (d) R 3 , R 4 , R 5 , and R 6 do not contain a group of formula —NHR, —SO 2 NHR, or —C(═O)NHR, wherein R is optionally substituted aryl, or optionally substituted heteroaryl.

›Embodiment 497

The compound of any of Embodiments 1-496, wherein the group of formula

does not together form a group of formula

wherein

B is an optionally substituted aryl, or optionally substituted heteroaryl; Q is a C 1-4 alkylidene chain in which each methylene unit of said Q is substituted by R 2 and R 2′ , and up to two non-adjacent methylene units of said Q are optionally and independently replaced by —SO 2 or —C(═O); each R 2 is independently selected from H, —OH, C 1-10 alkyl, C 1-10 aliphatic, (C 1-10 aliphatic)-NH—(C 1-10 aliphatic); —O—(C 1-10 aliphatic); —NH 2 , —NH(C 1-10 aliphatic), —N(C 1-10 aliphatic) 2 , —C(═O)R, aryl, or heteroaryl, wherein said aliphatic, aryl, or heteroaryl is optionally substituted; each R 2′ is independently selected from H and an optionally substituted C 1-10 aliphatic group; and R is selected from an optionally substituted group selected from C 1-10 aliphatic, aryl, aralkyl, heteroaryl, and heteroaralkyl; wherein for the purpose of this Embodiment, the following definitions apply:

“alkylidene chain” refers to a straight or branched carbon chain that may be fully saturated or have one or more units of unsaturation and has two points of attachment to the rest of the molecule; “aliphatic” or “aliphatic group” means a straight-chain or branched, substituted or unsubstituted C 1 -C 8 hydrocarbon chain that is completely saturated or that contains one or more units of unsaturation, or a monocyclic C 3 -C 8 hydrocarbon or bicyclic C 8 -C 12 hydrocarbon that is completely saturated or that contains one or more units of unsaturation, but which is not aromatic, that has a single point of attachment to the rest of the molecule wherein any individual ring in said bicyclic ring system has 3-7 members.

›Embodiment 498

The compound of any of Embodiments 1-497, wherein R 8 is neither aryl optionally substituted by one or more R 19 nor heteroaryl optionally substituted by one or more R 19 .

›Embodiment 499

The compound of any of Embodiments 1-498, wherein:

(a) when R 9 is —NH 2 , R 10 is not —C(═O)NH 2 ; (b) when R 9 is —NHC(═S)NHCOPh, R 10 is not —C(═O)OR 20 , wherein R 20 is alkyl optionally substituted by R 49 ; and (c) R 9 and R 10 do not, together with the atoms linking them, form a group of formula

wherein R 19 is as defined herein.

›Embodiment 500

The compound of any of Embodiments 1-499, wherein:

(a) when R 9 is —NH 2 , R 10 is not —C(═O)NH 2 ; and (b) R 9 and R 10 do not, together with the atoms linking them, form a group of formula

wherein R 19 is as defined herein.

›Embodiment 501

The compound of any of Embodiments 1-500, wherein R 9 and R 10 do not, together with the atoms linking them, form a group of formula or

wherein R 19 is as defined herein.

›Embodiment 502

The compound of any of Embodiments 1-501, wherein neither R 1 and R 2 nor R 1 and R 3 , together with the atoms linking them, form a heterocycloalkyl optionally substituted by one or more R 19 or a heteroaryl optionally substituted by one or more R 19 , wherein R 19 is as defined herein.

›Embodiment 503

The compound of any of Embodiments 1-502, wherein R 10 is not —CN, aryl optionally substituted by one or more R 19 , heterocycloalkyl optionally substituted by one or more R 19 , or heteroaryl optionally substituted by one or more R 19 , wherein R 19 is as defined herein.

›Embodiment 504

The compound of any of Embodiments 1-503, wherein R 9 is neither —NH 2 nor —OH when R 10 is —C(═O)R 20 , —C(═O)OR 20 , or —C(═O)NR 22 R 23 , wherein R 20 , R 22 , and R 23 are as defined herein.

›Embodiment 505

The compound of any of Embodiments 1-504, wherein when

(a) R 9 is chosen from H, C 1 -C 6 alkyl, C 3 -C 7 cycloalkyl and —(CH 2 ) n1 —R 411 wherein the subscript n1 is an integer of from 0 to 3 and R 411 is selected from C 1 -C 6 alkoxy, C 1 -C 6 alkylthio, mono- or di-(C 1 -C 6 alkyl)amino, amino, phenyl, pyridyl, furanyl, pyrrolyl, imidazolyl, oxazolyl, isoxazolyl, triazolyl, tetrazolyl, thiazolyl, pyrazolyl, and thienyl, wherein each of the rings is optionally substituted with from 1 to 3 substituents selected from halogen, N 3 , NO 2 , CN, C 1 -C 6 alkyl, OR 412 , N(R 412 ) 2 , CO 2 R 412 and CON(R 412 ) 2 , wherein each R 412 is independently H or C 1 -C 6 alkyl; and (b) R 10 is chosen from —R 401 , —OR 401 , —SR 401 , —N(R 410 )R 401 , —C(═O)R 401 , and —CH(OH)R 401 , wherein R 410 is selected from H, C 1 -C 6 alkyl and C(═O)C 1 -C 6 alkyl; and R 401 is chosen from H, halo, CN, NO 2 , N 3 , C 1 -C 6 alkyl, C 3 -C 7 cycloalkyl, —C(R 413 )═C(R 413 ) 2 , —C≡CR 413 or —(CH 2 ) n2 —R 414 ; wherein each R 413 is independently selected from H, F, CI, Br, CN, C 1 -C 6 alkyl, C 3 -C 7 cycloalkyl, (CH 2 ) n2 —R 414 and C(O)—(CH 2 ) n2 —R 414 ; and wherein each subscript n2 is independently an integer of from 0 to 3 and each R 414 is independently selected from C 1 -C 6 alkoxy, C 1 -C 6 alkylthio, mono- or di-(C 1 -C 6 )alkylamino, amino, phenyl, pyridyl, furanyl, pyrrolyl, imidazolyl, oxazolyl, isoxazolyl, triazolyl, tetrazolyl, thiazolyl, pyrazolyl, and thienyl, wherein each of the rings is optionally substituted with from 1 to 3 substituents selected from halogen, NO 2 , N 3 , CN, (C 1 -C 6 )alkyl, OR 415 , N(R 415 ) 2 , CO 2 R 415 and CON(R 415 ) 2 , wherein each R 415 is independently H or C 1 -C 6 alkyl; and wherein any alkyl or cycloalkyl portions of R 401 are optionally substituted with from one to five F substituents;

R 1 and R 11 do not, together with the atoms linking them, form a 6-7 membered heterocycloalkyl optionally substituted by one or more R 19 , wherein R 19 is as defined herein.

›Embodiment 506

The compound of any of Embodiments 1-504, wherein when

(a) R 9 is chosen from H, C 1 -C 6 alkyl, C 3 -C 7 cycloalkyl and —(CH 2 ) n1 —R 411 wherein the subscript n1 is an integer of from 0 to 3 and R 411 is selected from C 1 -C 6 alkoxy, C 1 -C 6 alkylthio, mono- or di-(C 1 -C 6 alkyl)amino, amino, phenyl, pyridyl, furanyl, pyrrolyl, imidazolyl, oxazolyl, isoxazolyl, triazolyl, tetrazolyl, thiazolyl, pyrazolyl, and thienyl, wherein each of the rings is optionally substituted with from 1 to 3 substituents selected from halogen, N 3 , NO 2 , CN, C 1 -C 6 alkyl, OR 412 , N(R 412 ) 2 , CO 2 R 412 and CON(R 412 ) 2 , wherein each R 412 is independently H or C 1 -C 6 alkyl; and (b) R 10 is chosen from —R 401 , —OR 401 , —SR 401 , —N(R 410 )R 401 , —C(O)R 401 , and —CH(OH)R 401 , wherein R 410 is selected from H, C 1 -C 6 alkyl and C(═O)C 1 -C 6 alkyl; and R 401 is chosen from H, halo, CN, NO 2 , N 3 , C 1 -C 6 alkyl, C 3 -C 7 cycloalkyl, —C(R 413 )═C(R 413 ) 2 , —C≡CR 413 or —(CH 2 ) n2 —R 414 ; wherein each R 413 is independently selected from H, F, CI, Br, CN, C 1 -C 6 alkyl, C 3 -C 7 cycloalkyl, (CH 2 ) n2 —R 414 and C(O)—(CH 2 ) n2 —R 414 ; and wherein each subscript n2 is independently an integer of from 0 to 3 and each R 414 is independently selected from C 1 -C 6 alkoxy, C 1 -C 6 alkylthio, mono- or di-(C 1 -C 6 )alkylamino, amino, phenyl, pyridyl, furanyl, pyrrolyl, imidazolyl, oxazolyl, isoxazolyl, triazolyl, tetrazolyl, thiazolyl, pyrazolyl, and thienyl, wherein each of the rings is optionally substituted with from 1 to 3 substituents selected from halogen, NO 2 , N 3 , CN, (C 1 -C 6 )alkyl, OR 415 , N(R 415 ) 2 , CO 2 R 415 and CON(R 415 ) 2 , wherein each R 415 is independently H or C 1 -C 6 alkyl; and wherein any alkyl or cycloalkyl portions of R 401 are optionally substituted with from one to five F substituents;

R 1 and R 11 do not, together with the atoms linking them, form a 6-7 membered heterocycloalkyl optionally substituted by 1-4 R 403 , wherein each R 403 is independently chosen from C 1 -C 6 alkyl, C 3 -C 7 cycloalkyl, —(CH 2 ) n4 —R 419 and —C(O)—(CH 2 ) n4 —R 419 ; wherein the subscript n4 is an integer of from 0 to 4 and each R 419 is independently selected from C 1 -C 6 alkoxy, C 1 -C 6 alkylthio, mono- or di-(C 1 -C 6 )alkylamino, amino, phenyl, pyridyl, furanyl, pyrrolyl, imidazolyl, oxazolyl, isoxazolyl, triazolyl, tetrazolyl, thiazolyl, pyrazolyl, and thienyl, wherein each of the rings is optionally substituted with from 1 to 3 substituents selected from halogen, N 3 , NO 2 , CN, C 1 -C 6 alkyl, —OR 420 , —N(R 420 ) 2 , CO 2 R 420 and CON(R 420 ) 2 , wherein each R 420 is independently H or C 1 -C 6 alkyl; and wherein any alkyl or cycloalkyl portions of R 403 are optionally substituted with from one to five F substituents.

›Embodiment 507

The compound of any of Embodiments 1-504, wherein R 1 and R 11 do not, together with the atoms linking them, form a 6-7 membered heterocycloalkyl optionally substituted by 1-4 R 403 , wherein each R 403 is independently chosen from C 1 -C 6 alkyl, C 3 -C 7 cycloalkyl, —(CH 2 ) n4 —R 419 and —C(O)—(CH 2 ) n4 —R 419 ; wherein the subscript n4 is an integer of from 0 to 4 and each R 419 is independently selected from C 1 -C 6 alkoxy, C 1 -C 6 alkylthio, mono- or di-(C 1 -C 6 )alkylamino, amino, phenyl, pyridyl, furanyl, pyrrolyl, imidazolyl, oxazolyl, isoxazolyl, triazolyl, tetrazolyl, thiazolyl, pyrazolyl, and thienyl, wherein each of the rings is optionally substituted with from 1 to 3 substituents selected from halogen, N 3 , NO 2 , CN, C 1 -C 6 alkyl, —OR 420 , —N(R 420 ) 2 , CO 2 R 420 and CON(R 420 ) 2 , wherein each R 420 is independently H or C 1 -C 6 alkyl; and wherein any alkyl or cycloalkyl portions of R 403 are optionally substituted with from one to five F substituents.

›Embodiment 508 · 1 of 3

The compound of any of Embodiments 1-504, wherein R 1 and R 11 do not, together with the atoms linking them, form a 6-7 membered heterocycloalkyl optionally substituted by one or more R 19 , wherein R 19 is as defined herein.

The above Embodiments include salts of acidic and basic compounds of formula (I). Preferably, the salts are pharmaceutically acceptable. Pharmaceutically acceptable acid addition salts of basic compounds of formula (I) include, but are not limited to, salts derived from inorganic acids such as hydrochloric, nitric, phosphoric, sulfuric, hydrobromic, hydriodic, and phosphorus, as well as the salts derived from organic acids, such as aliphatic mono- and dicarboxylic acids, phenyl-substituted alkanoic acids, hydroxy alkanoic acids, alkanedioic acids, aromatic acids, and aliphatic and aromatic sulfonic acids. Such salts thus include, but are not limited to, sulfate, pyrosulfate, bisulfate, sulfite, bisulfite, nitrate, phosphate, monohydrogenphosphate, dihydrogenphosphate, metaphosphate, pyrophosphate, chloride, bromide, iodide, acetate, propionate, caprylate, isobutyrate, oxalate, malonate, succinate, suberate, sebacate, fumarate, maleate, mandelate, benzoate, chlorobenzoate, methylbenzoate, dinitrobenzoate, phthalate, benzenesulfonate, toluenesulfonate, phenylacetate, citrate, lactate, maleate, tartrate, and methanesulfonate. See, for example, Berge et al., “Pharmaceutical Salts,” J. of Pharmaceutical Science, 1977; 66:1-19.

Acid addition salts may be prepared by contacting a compound of formula (I) with a sufficient amount of the desired acid to produce the salt in the conventional manner. The free base form of the compound of formula (I) may be regenerated by contacting the salt form with a base and isolating the free base in the conventional manner.

Pharmaceutically acceptable base salts of acidic compounds of formula (I) are formed with metals or amines, such as alkali and alkaline earth metal hydroxides, or of organic amines. Examples of metals used as cations include, but are not limited to, sodium, potassium, magnesium, and calcium. Examples of suitable amines include, but are not limited to, N,N′-dibenzylethylenediamine, chloroprocaine, choline, diethanolamine, ethylenediamine (ethane-1,2-diamine), N-methylglucamine, and procaine. See, for example, Berge et al., “Pharmaceutical Salts,” J. of Pharmaceutical Science, 1977; 66:1-19.

Base salts may be prepared by contacting a compound of formula (I) with a sufficient amount of the desired base to produce the salt in the conventional manner. The acid form of the compound of formula (I) may be regenerated by contacting the salt form with an acid and isolating the acid in a conventional manner.

Some compounds of the present invention may exist as stereoisomers, including enantiomers, diastereomers, and geometric isomers. Geometric isomers include compounds of the present invention that have alkenyl groups, which may exist as entgegen or zusammen conformations, in which case all geometric forms thereof, both entgegen and zusammen, cis and trans, and mixtures thereof, are within the scope of the present invention. Some compounds of the present invention have cycloalkyl groups, which may be substituted at more than one carbon atom, in which case all geometric forms thereof, both cis and trans, and mixtures thereof, are within the scope of the present invention. All of these forms, including (R), (S), epimers, diastereomers, cis, trans, syn, anti, (E), (Z), tautomers, and mixtures thereof, are included in the compounds of the present invention.

The compounds of the present invention may be in any physical form, including amorphous or crystalline solids in any polymorphic form, in any state of purity. Crystalline polymorphic forms include unsolvated forms as well as solvated forms, such as hydrated forms.

III. Pharmaceutical Compositions

The present invention further provides pharmaceutical compositions comprising a compound of any of the above Embodiments (e.g., a compound of formula (I) or a pharmaceutically acceptable salt thereof), together with a pharmaceutically acceptable excipient therefor. For preparing a pharmaceutical composition from a compound of the present invention, pharmaceutically acceptable excipients can be either solid or liquid. An excipient can be one or more substances which may act as, e.g., a carrier, diluent, flavoring agent, binder, preservative, tablet disintegrating agent, or an encapsulating material. The pharmaceutical composition may contain two or more compounds of the present invention (e.g., two different salt forms of a compound of formula (I), may be used together in the same pharmaceutical composition). Preferably, the pharmaceutical composition contains a therapeutically effective amount of a compound of formula (I) or a pharmaceutically acceptable salt form thereof. In one embodiment, the composition contains an amount of a compound of formula (I) or a pharmaceutically acceptable salt form thereof effective to treat an atypical protein kinase C (aPKC)-dependent disorder or condition. Preferably, a compound of the present invention will cause a decrease in symptoms or disease indicia associated with an aPKC-dependent disorder as measured quantitatively or qualitatively. The composition may also contain, in addition to a compound of formula (I) or a pharmaceutically acceptable salt form thereof and a pharmaceutically acceptable excipient, another therapeutic compound, such as a compound useful in the treatment of cancer.

A compound of the present invention can be formulated as a pharmaceutical composition in any delivery form, such as a syrup, an elixir, a suspension, a powder, a granule, a tablet, a capsule, a lozenge, a troche, an aqueous solution, a cream, an ointment, a lotion, a gel, an emulsion, etc. Solid form preparations include powders, tablets, pills, capsules, cachets, suppositories, and dispersible granules. Preferably, the pharmaceutical composition is a tablet or capsule. In one embodiment, the pharmaceutical composition is a tablet. In another embodiment, the pharmaceutical composition is a capsule.

›Embodiment 508 · 2 of 3

In powders, the excipient may be a finely divided solid in a mixture with a finely divided active component (i.e., compound of the present invention). In tablets, the active component may be mixed with an excipient having the necessary binding properties in suitable proportions and compacted in the shape and size desired. Suitable excipients include magnesium carbonate, magnesium stearate, talc, sugar, lactose, pectin, dextrin, starch, gelatin, tragacanth, methylcellulose, sodium carboxymethylcellulose, low melting wax, cocoa butter, and the like.

The pharmaceutical composition preferably contains from 1% to 95% (w/w) of the active compound (i.e., compound of the present invention). More preferably, the pharmaceutical composition contains from 5% to 70% (w/w) of the active compound.

For preparing suppositories, a low melting wax, such as a mixture of fatty acid glycerides or cocoa butter, may be melted and the active component dispersed homogeneously therein, as by stirring. The molten homogeneous mixture may then be poured into convenient sized molds, allowed to cool, and thereby to solidify.

Liquid form preparations include solutions, suspensions, and emulsions. Formulations suitable for parenteral administration, such as, for example, by intravenous, intramuscular, intradermal, and subcutaneous routes, include aqueous and non-aqueous, isotonic sterile injection solutions, which can contain antioxidants, buffers, bacteriostats, and solutes that render the formulation isotonic with the blood of the intended recipient, and aqueous and nonaqueous sterile suspensions that can include suspending agents, solubilizers, thickening agents, stabilizers, and preservatives. In the practice of this invention, compositions can be administered, for example, by intravenous infusion, orally, topically, intraperitoneally, intravesically or intrathecally. The formulations of compounds can be presented in unit-dose or multi-dose sealed containers, such as ampoules and vials. Injection solutions and suspensions can be prepared from sterile powders, granules, and tablets of the kind previously described.

A compound of the present invention, alone or in combination with other suitable components, can be made into aerosol formulations (e.g., they can be “nebulized”) to be administered via inhalation. Aerosol formulations can be placed into pressurized acceptable propellants, such as dichlorodifluoromethane, propane, nitrogen, and the like.

Pharmaceutically acceptable excipients are determined in part by the particular composition being administered, as well as by the particular method used to administer the composition. Accordingly, there is a wide variety of suitable formulations of pharmaceutical compositions of the present invention (see, e.g., Remington: The Science and Practice of Pharmacy, 20th ed., Gennaro et al. Eds., Lippincott Williams and Wilkins, 2000).

The quantity of active component in a pharmaceutical composition may be varied or adjusted from, e.g., 1 mg to 1,000 mg, 5 mg to 500 mg, 10 mg to 300 mg, or 25 mg to 250 mg, according to the particular application and the desired size of the dosage form.

The dose administered to a subject is preferably sufficient to induce a beneficial therapeutic response in the subject over time. The beneficial dose can vary from subject to subject depending upon, e.g., the subject's condition, body weight, surface area, and side effect susceptibility. Administration can be accomplished via single or divided doses. IV. Method of Treatment.

In another aspect, the present invention provides a method of treating an aPKC-dependent disorder or condition in a subject comprising: administering to the subject a compound of formula (I) as defined in any of the above Embodiments or a pharmaceutically acceptable salt form thereof. In another aspect, the present invention provides a compound of formula (I) as defined in any of the above Embodiments or a pharmaceutically acceptable salt form thereof for use in treating an aPKC-dependent disorder or condition in a subject. In another aspect, the present invention provides a compound of formula (I) as defined in any of the above Embodiments or a pharmaceutically acceptable salt form thereof for use in the preparation of a medicament for treating an aPKC-dependent disorder or condition in a subject. Preferably, the compound is administered to the subject as a pharmaceutical composition comprising a pharmaceutically acceptable excipient. Preferably, the compound is administered to the subject in a pharmaceutically acceptable amount. In one embodiment, the aPKC-dependent condition or disorder is cancer. In another embodiment, the aPKC-dependent condition is selected from non-small cell lung cancer (NSCLC), squamous cell carcinoma (e.g., oesophageal squamous cell carcinoma), leukaemia, prostate cancer, non-Hodgkin's lymphoma (e.g., follicular lymphoma), endometrial cancer, lung cancer and breast cancer.

The aPKC-dependent disorder or condition can be treated prophylactically, acutely, or chronically using compounds of the present invention, depending on the nature of the disorder or condition. Typically, the subject in each of these methods is human, although other mammals can also benefit from the administration of a compound of the present invention.

In another embodiment, the present invention provides a method of treating a proliferative disorder in a subject, comprising administering to the subject a compound of formula (I) as defined in any of the above Embodiments or a pharmaceutically acceptable salt form thereof. In another aspect, the present invention provides a compound of formula (I) as defined in any of the above Embodiments or a pharmaceutically acceptable salt form thereof for use in treating a proliferative disorder in a subject. In another aspect, the present invention provides a compound of formula (I) as defined in any of the above Embodiments or a pharmaceutically acceptable salt form thereof for use in the preparation of a medicament for treating a proliferative disorder in a subject. Preferably, the compound is administered to the subject in a pharmaceutical composition comprising a pharmaceutically acceptable excipient. Preferably, the compound is administered to the subject in a pharmaceutically acceptable amount. In certain embodiments, the proliferative disorder is aPKC-dependent. In certain embodiments, the proliferative disorder is cancer. In certain embodiments, the proliferative disorder is selected from non-small cell lung cancer (NSCLC), squamous cell carcinoma (e.g., oesophageal squamous cell carcinoma), leukaemia, prostate cancer, non-Hodgkin's lymphoma (e.g., follicular lymphoma), endometrial cancer, lung cancer and breast cancer.

›Embodiment 508 · 3 of 3

The proliferative disorder can be treated prophylactically, acutely, or chronically using a compound of the present invention, depending on the nature of the disorder or condition. Typically, the subject in each of these methods is human, although other mammals can also benefit from the administration of a compound of the present invention.

In therapeutic applications, the compounds of the present invention can be prepared and administered in a wide variety of oral and parenteral dosage forms. Thus, the compounds of the present invention can be administered by injection, that is, intravenously, intramuscularly, intracutaneously, subcutaneously, intraduodenally, or intraperitoneally. Also, the compounds described herein can be administered by inhalation, for example, intranasally. Additionally, the compounds of the present invention can be administered transdermally. In another embodiment, the compounds of the present invention are delivered orally. The compounds can also be delivered rectally, bucally or by insufflation.

Determination of the proper dosage for a particular situation is within the skill of the practitioner. Generally, treatment is initiated with smaller dosages which are less than the optimum dose of the compound. Thereafter, the dosage is increased by small increments until the optimum effect under the circumstances is reached. For convenience, the total daily dosage may be divided and administered in portions during the day, if desired. A typical dose is about 1 mg to about 1,000 mg per day, such as about 5 mg to about 500 mg per day. In certain embodiments, the dose is about 10 mg to about 300 mg per day, such as about 25 mg to about 250 mg per day.

V. Chemistry

›Abbreviations

For convenience, the following common abbreviations are used herein:

LCMS for Liquid Chromatography-Mass Spectrometry.

HPLC for High Pressure Liquid Chromatography.

NMR for Nuclear Magnetic Resonance.

RT for Retention Time.

MI for Molecular Ion

h for hours

min for minutes

AlCl 3 for aluminium chloride

BBr 3 for boron tribromide

Boc for tert-butoxycarbonyl

cataCXium C for trans-Bis(acetato)bis[o-(di-o-tolylphosphino)benzyl]dipalladium(II)

Cs 2 CO 3 for cesium carbonate

CuI for copper(I)iodide

DAST for diethylaminosulfur trifluoride

DBU for 1,8-diazabicyclo(5.4.0)undec-7-ene

DMAP for 4-(dimethylamino) pyridine

DCE for 1,1-dichloroethane or ethylidene chloride

DCM for dichloromethane or methylene chloride

DEA for diethanolamine

DIPEA for N,N,-di-isopropyethylamine, Hunig's base

DMA for N,N-dimethylacetamide

DMF for N,N-dimethylformamide

DMSO for dimethylsulfoxide.

Et 3 N for triethylamine

EtOH for ethyl alcohol, ethanol

HCl for hydrochloric acid

H 2 SO 4 for sulfuric acid

KOH for potassium hydroxide

MW for microwave

mCPBA for meta-Chloroperoxybenzoic acid

MeOH for methyl alcohol, methanol

Mo(CO) 6 for Molybdenum hexacarbonyl

MP-BH 4 for macroporous triethylammonium methyl polystyrene borohydride

NaOH for sodium hydroxide

Na 2 CO 3 for sodium carbonate

Na 2 SO 4 for sodium sulphate

NaOAc for sodium acetate

NaOtBu for sodium t-butoxide

NMP for 1-methyl-2-pyrrolidinone

NMM for N-methylmorpholine

Pd(dba) 2 for Bis(dibenzylideneacetone)palladium

Pd(OAc) 2 for Palladium diacetate

Pd(Ph 3 ) 4 for tetrakis(triphenylphosphine)palladium

Pd(PPh 3 ) 2 Cl 2 for Bis(triphenylphosphine)palladium(II) dichloride

POCl 3 for phosphorus oxychloride

PPh 3 for triphenylphosphine

PS-TsCl for polystyrene sulfonyl chloride

PS-PPh 3 -Pd for polystyrene triphenylphosphine-Pd(0)

SCX-2 for a silica-based sorbent with a chemically bonded propylsulfonic acid functional group

TBAF for Tetra-n-butylammonium fluoride

TBDMS for tert-butyldimethylsilyl

TCA for trichloroacetic acid

TFA for trifluoroacetic acid

THF for tetrahydrofuran

TMS azide for trimethylsilyl azide

Xantphos for 4,5-Bis(diphenylphosphino)-9,9-dimethylxanthene

XPhos for 2-Dicyclohexylphosphino-2′,4′,6′-triisopropylbiphenyl

›NMR · 1 of 14

Proton NMR spectra are recorded using a Bruker AMX-300 NMR machine at 300 MHz or a Bruker Avance NMR machine at 400 MHz. Shifts are reported in ppm values relative to an internal standard of tetramethylsilane (TMS) or residual protic solvent. The following abbreviations are used to describe the splitting patterns: s (singlet), d (doublet), t (triplet), q (quartet), m (multiplet), dd (double-doublet), dt (double-triplet), br (broad).

LCMS Methods

Samples analysed by High Performance Liquid Chromatography-Mass Spectrometry employed the following conditions.

Method 1

Method 1 employed Gilson 306 pumps, Gilson 811C mixer, Gilson 806 manometric module, and Gilson UV/VIS 152 detector at 254 nm wavelength. The mass spectrometer was a Finnigan AQA and the column used was a Waters SunFire, 5 μm pore size, C18 of dimensions 50×4.60 mm. The injection volume was 10 μl. The mobile phase consisted of a mixture of water and acetonitrile containing 0.1% formic acid. The eluent flow rate was 1.5 mL/min, using 95% water: 5% acetonitrile, changed linearly to 5% water: 95% acetonitrile over 5.5 minutes and then maintained at this mixture for 2 minutes.

Method 2

Method 2 employed Waters 515 pumps, a Waters 2525 mixer and a Waters 2996 diode array detector. The detection was performed between 210 nm and 650 nm. The mass spectrometer was a Waters micromass ZQ and the column used was a Waters SunFire, 5 μm pore size, C18 of dimensions 50×4.60 mm. The injection volume was 10 μl. The mobile phase consisted of a mixture of water and acetonitrile containing 0.1% formic acid. The eluent flow rate was 1.5 mL/min, using 95% water: 5% acetonitrile, changed linearly to 5% water: 95% acetonitrile over 5.5 minutes and then maintained at this mixture for 2 minutes.

Method 3

Method 3 employed Waters 515 pumps, a Waters 2525 mixer and a Waters 2487 UV detector (single wavelength 254 nm). The mass spectrometer was a Waters micromass ZQ and the column used was a Waters SunFire, 5 μm pore size, C18 of dimensions 50×4.60 mm. The injection volume was 10 μl. The mobile phase consisted of a mixture of water and acetonitrile containing 0.1% formic acid. The eluent flow rate was 1.5 mL/min, using 95% water: 5% acetonitrile, changed linearly to 5% water: 95% acetonitrile over 5.5 minutes and then maintained at this mixture for 2 minutes.

Method 4

Method 4 employed Waters 515 pumps, a Waters 2545 mixer with valves directing to the different columns and a Waters 2996 diode array detector. The detection was performed between 210 nm and 650 nm. The mass spectrometer used was a Waters 3100 which detected masses between 100 and 700 g/mol. The column used was a XBridge, 5 micron pore size, C18, 50×4.60 mm. The injection volume was 10 μl of a solution (around 1 mg/ml). The flow rate was 1.5 mL/min and the mobile phases of water pH 10 0.03% ammonium hydroxide) (3 ml/101) and acetonitrile 0.03% ammonium hydroxide (3 ml/101). The elution was started at 95% water: 5% acetonitrile ramping up to 5% water:95% acetonitrile over 5.50 minutes. The eluent level was returned to the starting conditions of 95% water: 5% acetonitrile over 6 seconds. These conditions were held for 1.4 minutes to allow equilibration of the column before the next sample was injected. The run lasted 7 minutes in total.

Method 5

Method 5 employed Waters 515 pumps, a Waters 2525 mixer with valves directing to the different columns and a Waters 2487 UV detector. The detection was done between at 254 nm. The mass spectrometer used was a Waters micromass ZQ which detected masses between 100 and 700 g/mol. The column used was a SunFire, 5 micron pore size, C18 column of dimensions 50×4.60 mm was used. The injection volume was 10 μL of a solution (around 1 mg/mL). The flow rate was 1.5 mL/min and the mobile phases of water and methanol contained 0.1% formic acid. The elution was started at 85% water: 15% methanol ramping up to 15% water:85% methanol over 4.5 minutes, these conditions were held for 1 minute before the eluent level was returned to the starting conditions of 85% water: 15% methanol over 6 seconds. These conditions were held for 1.4 minutes to allow equilibration of the column before the next sample was injected. The run lasted 7 minutes in total.

Method 6

Method 6 employed Waters 515 pumps, a Waters 2545 mixer with valves directing to the different columns and a Waters 2996 diode array detector. The detection was done between 210 nm and 650 nm. The mass spectrometer used was a Waters 3100 which detected masses between 100 and 700 g/mol. The column used was a XBridge, 5 micron pore size, C18, 50×4.60 mm. The injection volume was 10 μL of a solution (around 1 mg/mL). The flow rate was 1.5 mL/min and the mobile phases of water pH 10 0.03% ammonium hydroxide) (3 ml/101) and methanol 0.03% ammonium hydroxide (3 ml/101). The elution was started at 85% water: 15% methanol ramping up to 15% water:85% methanol over 4.5 minutes. These conditions were held for 1 minute before the eluent level was returned to the starting conditions of 85% water:15% methanol over 6 seconds. These conditions were held for 1.4 minutes to allow equilibration of the column before the next sample was injected. The run lasted 7 minutes in total.

Method 7

Method 7 employed Waters 515 pumps, a Waters 2545 mixer with valves directing to the different columns and a Waters 2487 UV detector. The detection was done between at 254 nm. The mass spectrometer used was a Waters micromass ZQ which detected masses between 100 and 700 g/mol. The column used was a SunFire, 5 micron pore size, C18 column of dimensions 50×4.60 mm was used. The injection volume was 10 μL of a solution (around 1 mg/mL). The flow rate was 1.5 mL/min and the mobile phases of water and methanol contained 0.1% formic acid. The elution was started at 85% water: 15% methanol ramping up to 15% water:85% methanol over 4.5 minutes., these conditions were held for 1 minute before the eluent level was returned to the starting conditions of 85% water: 15% methanol over 6 seconds. These conditions were held for 1.4 minutes to allow equilibration of the column before the next sample was injected. The run lasted 7 minutes in total.

›NMR · 2 of 14

Method 8

Method 8 employed Waters 515 pumps, a Waters 2525 mixer with valves directing to the different columns and a Waters 2487 UV detector. The detection was done between at 254 nm. The mass spectrometer used was a Waters micromass ZQ which detected masses between 100 and 700 g/mol. The column used was a SunFire, 5 micron pore size, C18 column of dimensions 50×4.60 mm was used. The injection volume was 10 μL of a solution (around 1 mg/mL). The flow rate was 1.5 mL/min and the mobile phases of water and methanol contained 0.1% formic acid. The elution was started at 85% water: 15% methanol ramping up to 15% water:85% methanol over 3 minutes., these conditions were held for 2.5 minute before the eluent level was returned to the starting conditions of 85% water: 15% methanol over 6 seconds. These conditions were held for 1.4 minutes to allow equilibration of the column before the next sample was injected. The run lasted 7 minutes in total.

Method 9

Method 9 employed Waters 515 pumps, a Waters 2545 mixer with valves directing to the different columns and a Waters 2487 UV detector. The detection was done between at 254 nm. The mass spectrometer used was a Waters micromass ZQ which detected masses between 100 and 700 g/mol. The column used was a XBridge, 5 micron pore size, C18, 50×4.60 mm. The injection volume was 10 μL of a solution (around 1 mg/mL). The flow rate was 1.5 mL/min and the mobile phases of water pH 10 0.03% ammonium hydroxide) (3 ml/101) and methanol 0.03% ammonium hydroxide (3 ml/101). The elution was started at 85% water: 15% methanol ramping up to 15% water:85% methanol over 4.5 minutes. These conditions were held for 1 minute before the eluent level was returned to the starting conditions of 85% water: 15% methanol over 6 seconds. These conditions were held for 1.4 minutes to allow equilibration of the column before the next sample was injected. The run lasted 7 minutes in total.

Method 10

LCMS results were obtained on either of two instruments. LCMS analysis was performed on a Waters Aquity Ultra Performance LC with a 2.1 mm×50 mm Waters Aquity UPLC BEH C18 1.7 μm column. The target column temperature was 45° C., with a run time of two (2) minutes, a flow rate of 0.600 mL/min, and a solvent mixture of 5% (0.1% formic acid/water):95% (acetonitrile/0.1% formic acid). The mass spectrometry data was acquired on a Micromass LC-ZQ 2000 quadrupole mass spectrometer. Alternatively, LCMS analysis was performed on a Bruker Esquire 200 ion trap.

Preparative HPLC Methods

Samples purified by Mass Spectrometry directed High Performance Liquid Chromatography employed the following conditions.

Method A

Method A employed Waters 515 pumps, a Waters 2525 mixer and a Waters 2487 UV detector (single wavelength 254 nm). The mass spectrometer was a Waters micromass ZQ and the column used was a Waters SunFire, 5 μm pore size, C18 of dimensions 50×19 mm. The injection volume was up to 500 μL of solution at a maximum concentration of 50 mg/mL. The mobile phase consisted of a mixture of water and acetonitrile containing 0.1% formic acid. The eluent flow rate was 25 mL/min using 95% water, 5% acetonitrile, changing linearly over 5.3 minutes to 95% acetonitrile, 5% water, and maintaining for 0.5 minutes.

Method B

Method B employed Waters 515 pumps a Waters 2545 mixer with valves directing to the different columns and a Waters 2996 diode array detector. The detection was performed between 210 nm and 650 nm. The mass spectrometer used was a Waters 3100 which detected masses between 100 and 700 g/mol. The column used was a XBridge, 5 micron pore size, C18, 50×19 mm. The injection volume was chosen by the user and can be up to 500 μL of the solution (max 50 mg/mL). The flow rate was 25 mL/min and the mobile phases of water pH 10 0.03% ammonium hydroxide (3 ml/101) and acetonitrile 0.03% ammonium hydroxide (3 ml/101). The elution was started at 95% water:5% acetonitrile ramping up to 5% water:95% acetonitrile over 5.30 minutes. The eluent level was returned to the starting conditions of 95% water: 5% acetonitrile over 0.6 minutes. These conditions were held for 1.4 minutes to allow equilibration of the column before the next sample was injected. The run lasted 7 minutes in total.

Analytical HPLC Methods

Method X

Method X employs gradient elution (0 to 100%) acetonitrile (containing 0.1% trifluoroacetic acid):water (containing 0.1% trifluoroacetic acid) over five minutes on a 4.6×75 mm (2.5 micron) Zorbax XDB-C8 column at 2.5 ml/min on an Agilent 1100 series HPLC.

Synthesis

Several methods for the chemical synthesis of 4-substituted-2-(pyridin-4-yl)-thieno[2,3-d]pyrimidine compounds (“4PT23P compounds”) and 4-substituted-2-(pyridin-4-yl)-thieno[3,2-d]pyrimidine compounds (“4PT32P compounds”) of the present invention are described herein. These and/or other well known methods may be modified and/or adapted in known ways in order to facilitate the synthesis of additional compounds within the scope of the present invention. Unless otherwise stated, compounds are of commercial origin or readily synthesized by standard methods well known to one skilled in the art of organic synthesis.

It is understood that the examples and embodiments described herein are for illustrative purposes only and that various modifications or changes in light thereof will be suggested to persons skilled in the art and are to be included within the spirit and purview of this invention. Specific chemical transformations are listed in the ensuing schemes and one skilled in the art appreciates that a variety of different reagents may be used in place of those listed. Common replacements for such reagents can be found in texts such as “Encyclopedia of Reagents for Organic Synthesis” Leo A. Paquette, John Wiley & Son Ltd (1995) or “Comprehensive Organic Transformations: A Guide to Functional Group Preparations” Richard C. Larock. Wiley-VCH and “Strategic Applications of Named Reactions in Organic Synthesis” Kurti and Czako, Elsevier, 2005 and references cited therein.

›NMR · 3 of 14

4PT23P Compounds

In one approach, compounds of formula [F-1] (where A=NH or N alkyl) are prepared by reacting a compound of formula [F-2] (where X is a halogen such as chlorine or sulfonate) with a compound of formula [F-3] (where A is NH or NH 2 and Z on the terminal nitrogen is H, alkyl or a suitable nitrogen protecting group, such as Boc, Alloc, Cbz or Fmoc) in a suitable solvent such as DMF in the presence of a suitable base such as triethylamine.

The reaction is suitably conducted at an elevated temperature for example 40° C. Where Z is a suitable nitrogen protecting group, such as Boc, Alloc, Cbz or Fmoc, compounds of formula [F-1] are prepared by a suitable deprotection reaction. For example: where Z is a Boc protecting group reaction with an acid such as TFA in a suitable solvent such as DCM. The reaction is suitably conducted at ambient temperature. In one approach, compounds of formula [F-1](where A is O) are prepared by reacting a compound of formula [F-2] (where X is a halogen such as chlorine or sulfonate) with a compound of formula [F-2] (where A=OH and Z on the terminal nitrogen is H, alkyl or a suitable nitrogen protecting group, such as Boc, Alloc, Cbz or Fmoc) in a suitable solvent such as DMA in the presence of a suitable base such as sodium hydride. The reaction is suitably conducted at ambient temperature. Where Z is a suitable nitrogen protecting group, such as Boc, Alloc, Cbz or Fmoc, compounds of formula [F-1] are prepared by a suitable deprotection reaction. For example: where Z is a Boc protecting group reaction with an acid such as TFA in a suitable solvent such as DCM. The reaction is suitably conducted at ambient temperature.

In one approach, compounds of formula [F-2] (where X is a halogen such as chlorine) are prepared by reacting a compound of formula [F-4] with a suitable halogenating agent such as phosphorous oxychloride. The reaction is suitably conducted at elevated temperature such as 125° C. Compounds of formula [F-2] (where X is a sulfonate) are prepared by reacting a compound of formula [F-4] with a suitably substituted sulfonyl chloride such as 2,4,6-triisopropylbenzenesulfonyl chloride in a suitable solvent such as DMA in the presence of a suitable base such as triethylamine and a catalytic amount of DMAP. The reaction is suitably conducted at ambient temperature.

In one approach, compounds of formula [F-4] are prepared by reacting a compound of formula [F-5] (where Rx is an alkyl group such as methyl or ethyl) with a compound of formula [F-6] in a suitable solvent such as dioxane with a suitable base such as potassium-tert-pentylate. The reaction is suitably conducted at ambient temperature.

In one approach, compounds of formula [F-5] are prepared by reacting a ketone derivative of formula [F-7] (where R x1 and R x2 are H, alkyl, aryl or form a cyclic saturated ring) with a cyanoacetic acid derivative of formula [F-8] (where Rx is an alkyl group such as methyl or ethyl) with elemental sulphur in the presence of a base such as morpholine in a suitable solvent such as ethanol. The reaction is suitably conducted at an elevated temperature for example 80-90° C.

In one approach, compounds of formula [F-3] (where A is OH) are prepared by reacting a compound of formula [F-9] (where Z on the terminal nitrogen is H, alkyl or a suitable nitrogen protecting group, such as Boc, Alloc, Cbz or Fmoc) with a reducing agent such as borane-THF complex in a suitable solvent such as THF. The reaction is suitably conducted at low temperature for example 0° C. In one approach, compounds of formula [F-3] (where A is NH 2 ) are prepared by reacting a compound of formula [F-10] (where Z on the terminal nitrogen is H, alkyl or a suitable nitrogen protecting group, such as Boc, Alloc, Cbz or Fmoc) with a reducing agent such as borane-THF complex in a suitable solvent such as THF. The reaction is suitably conducted at low temperature for example 0° C. In one approach, compounds of formula [F-10] are prepared by reacting compounds of formula [F-9] with Boc anhydride in the presence of a suitable base such as pyridine, ammonium carbonate in a suitable solvent such as dioxane. The reaction is suitably conducted at ambient temperature.

An example of a method as described above is illustrated in the following scheme.

General Synthesis of 2-amino-4,5-substituted-thiophene-3-carboxylic Acid Ethyl Esters of General Formula [F-5] (Scheme A1)

2-amino-4,5-substituted-thiophene-3-carboxylic acid ethyl esters of general formula [F-5] were synthesised by a cyclisation reaction with cyano-acetic acid ethyl ester of general formula [F-8], a substituted ketone of general formula [F-7] and elemental sulphur in the presence of morpholine in a polar protic solvent such as ethanol at reflux (Scheme A1).

Synthesis of 2-Amino-1,4-Dioxa-spiro[6.6]4,5,6,7-tetrahydro-benzo[b]thiophene-3-carboxylic Acid Ethyl Ester [AA-1]

To a mixture of 1,4-Dioxa-spiro[4.5]decan-8-one (1.56 g, 10 mmol), cyano-acetic acid ethyl ester (1.13 g, 10 mmol) and elemental sulphur (320 mg, 10 mmol) in ethanol (20 ml) was added morpholine (870 mg, 10 mmol). The reaction was heated at reflux overnight. The mixture was left to cool down and a precipitate formed which was recovered by filtration and washed with cold ethanol (40 ml), then dried under reduced pressure to give the title compound (2.1 g, 76%) which was used without further purification. LCMS method: 3, RT: 5.24 min, MI: 284 [M+1]. 1H NMR (300 MHz, DMSO): 4.21 (m, 1H), 4.17 (q, 2H), 4.01 (m, 1H), 3.82 (m, 2H), 3.08 (m, 1H), 2.68 (m, 1H), 1.91 (m, 4H), 1.21 (t, 3H).

Synthesis of 2-amino-6,6-dimethyl-4,5,6,7-tetrahydro-benzo[b]thiophene-3-carboxylic Acid Ethyl Ester [AA-2]

To a mixture of 4,4-Dimethyl-cyclohexanone, cyano-acetic acid ethyl ester and elemental sulphur in ethanol was added morpholine. The reaction was reflux overnight. The mixture was left to cool down and a precipitate appeared. The solid was recovered by filtration and to give the title compound as a yellow solid. LCMS method: 3, RT: 5.64 min, MI: 254 [M+1].

›NMR · 4 of 14

Synthesis of 2-amino-4,7-dihydro-5H-thieno[2,3-c]thiopyran-3-carboxylic Acid Ethyl Ester [AA-3]

To a mixture of tetrahydro-thiopyran-4-one, cyano-acetic acid ethyl ester and elemental sulphur in ethanol was added morpholine. The reaction was reflux overnight. The mixture was left to cool down and a precipitate appeared. The solid was recovered by filtration and to give the title compound as a yellow solid. LCMS method: 3, RT: 5.78 min, MI: 244 [M+1].

Synthesis of 2-amino-4,7-dihydro-5H-thieno[2,3-c]pyran-3-carboxylic Acid Ethyl Ester [AA-4]

To a mixture of tetrahydro-pyran-4-one, cyano-acetic acid ethyl ester and elemental sulphur in ethanol was added morpholine. The reaction was reflux overnight. The mixture was left to cool down and a precipitate appeared. The solid was recovered by filtration and to give the title compound as a yellow solid. LCMS method: 3, RT: 5.86 min, MI: 228 [M+1].

General Synthesis of 5, 6-substituted 2-pyridin-4-yl-thieno[2, 3-d]pyrimidin-4-ols of General Formula [F-4] (Scheme A2)

4,5-substituted-2-amino-thiophene-3-carboxylic acid alkyl esters of general formula [F-5] were subjected to a cyclisation reaction with 4-cyanopyridine of general formula [F-6] in the presence of a hindered alkoxide base such as potassium-tert-pentylate 1.7M in toluene or potassium-tert-butoxide in a dry non-aprotic solvent such as dioxane or THF at ambient temperature.

Synthesis of 2-pyridin-4-yl-5,6,7,8-tetrahydro-benzo[4,5]thieno[2,3-d]pyrimidin-4-ol [AA-5]

To a solution of 4-cyanopyridine (1.25 g, 12 mmol) in dry dioxane (10 ml) was added 2-amino-4,5,6,7-tetrahydro-benzo[b]thiophene-3-carboxylic acid ethyl ester (2.25 g, 10 mmol) followed by potassium-tert-pentylate 1.7M in toluene (12 ml, 20 mmol). The reaction mixture was stirred at room temperature overnight. After completion the precipitate formed was filtered and washed with diethyl ether. The residue was used without any further purification in the next step. LCMS method: 1, RT: 3.54 min, MI: 284 [M+1]. 1H 1H NMR (300 MHz, DMSO): 8.56 (d, 2H), 8.12 (d, 2H), 2.90 (m, 2H), 2.67 (m, 2H), 1.76 (m, 4H).

The following compounds were prepared according to the general synthesis shown in scheme A2:

7-methyl-2-pyridin-4-yl-5,6,7,8-tetrahydro-benzo[4,5]thieno[2,3-d]pyrimidin-4-ol [AA-6] was prepared by reaction of 2-amino-6-methyl-4,5,6,7-tetrahydro-benzo[b]thiophene-3-carboxylic acid ethyl ester, 4-cyanopyridine, potassium-tert-pentylate 1.7M in toluene and dioxane at room temperature to give the title compound as an off-white solid. LCMS method: 1, RT: 3.68 min, MI: 298 [M+1].

2-pyridin-4-yl-5,6,7,8,9,10-hexahydro-11-thia-1,3-diaza-cycloocta[a]inden-4-ol [AA-7] was prepared by reaction of 2-amino-4,5,6,7,8,9-hexahydro-cycloocta[b]thiophene-3-carboxylic acid ethyl ester, 4-cyanopyridine, potassium-tert-pentylate 1.7M in toluene and dioxane at room temperature to give the title compound as an off-white solid. LCMS method: 1, RT: 3.72 min, MI: 312 [M+1].

2-pyridin-4-yl-6,7,8,9-tetrahydro-5H-10-thia-1,3-diaza-benzo[a]azulen-4-ol [AA-8] was prepared by reaction of 2-amino-5,6,7,8-tetrahydro-4H-cyclohepta[b]thiophene-3-carboxylic acid ethyl ester, 4-cyanopyridine, potassium-tert-pentylate 1.7M in toluene and dioxane at room temperature to give the title compound as a yellow solid. LCMS method: 2, RT: 3.87 min, MI: 298 [M+1].

1,4-Dioxa-spiro[7.7]-2-pyridin-4-yl-5,6,7,8-tetrahydro-benzo[4,5]thieno[2,3-d]pyrimidin-4-ol [AA-9] was prepared by reaction of 2-Amino-1,4-Dioxa-spiro[6.6]4,5,6,7-tetrahydro-benzo[b]thiophene-3-carboxylic Acid Ethyl Ester [AA-1], 4-cyanopyridine, potassium-tert-pentylate 1.7M in toluene and dioxane at room temperature to give the title compound as a yellow solid. LCMS method: 3, RT: 2.80 min, MI: 342 [M+1].

7,7-dimethyl-2-pyridin-4-yl-5,6,7,8-tetrahydro-benzo[4,5]thieno[2,3-d]pyrimidin-4-ol [AA-10] was prepared by reaction of 2-amino-6,6-dimethyl-4,5,6,7-tetrahydro-benzo[b]thiophene-3-carboxylic Acid Ethyl Ester [AA-2], 4-cyanopyridine, potassium-tert-pentylate 1.7M in toluene and dioxane at room temperature to give the title compound as an off-white solid. LCMS method: 3, RT: 4.24 min, MI: 312 [M+1].

4-hydroxy-2-pyridin-4-yl-5,8-dihydro-6H-pyrido[4′,3′:4,5]thieno[2,3-d]pyrimidine-7-carboxylic acid tert-butyl ester [AA-11] was prepared by reaction of 2-amino-4,7-dihydro-5H-thieno[2,3-c]pyridine-3,6-dicarboxylic acid 6-tert-butyl ester 3-ethyl ester, 4-cyanopyridine, potassium-tert-pentylate 1.7M in toluene and dioxane at room temperature to give the title compound as an off-white solid. LCMS method: 1, RT: 3.50 min, MI: 384 [M+1].

2-pyridin-4-yl-5,8-dihydro-6H-pyrano[4′,3′:4,5]thieno[2,3-d]pyrimidin-4-ol [AA-12] was prepared by reaction of 2-amino-4,7-dihydro-5H-thieno[2,3-c]pyran-3-carboxylic Acid Ethyl Ester [AA-4], 4-cyanopyridine, potassium-tert-pentylate 1.7M in toluene and dioxane at room temperature to give the title compound as a yellow solid. LCMS method: 3, RT: 3.50 min, MI: 286 [M+1].

2-pyridin-4-yl-5,8-dihydro-6H-thiopyrano[4′,3′:4,5]thieno[2,3-d]pyrimidin-4-ol [AA-13] was prepared by reaction of 2-amino-4,7-dihydro-5H-thieno[2,3-c]thiopyran-3-carboxylic acid ethyl ester [AA-3], 4-cyanopyridine, potassium-tert-pentylate 1.7M in toluene and dioxane at room temperature to give the title compound as a yellow solid. LCMS method: 2, RT: 3.14 min, MI: 302 [M+1].

(4-Hydroxy-2-pyridin-4-yl-5,8-dihydro-6H-pyrido[4′,3′:4,5]thieno[2,3-d]pyrimidin-7-yl)-phenyl-methanone [AA-14] was prepared by reaction of 2-Amino-6-benzoyl-4,5,6,7-tetrahydro-thieno[2,3-c]pyridine-3-carboxylic acid ethyl ester, 4-cyanopyridine, potassium-tert-pentylate 1.7M in toluene and THF at room temperature to give the title compound as a yellow solid. LCMS method: 3, RT: 3.02 min, MI: 389[M+1].

5-Methyl-2-pyridin-4-yl-thieno[2,3-d]pyrimidin-4-ol [AA-15] was prepared by reaction of ethyl 2-amino-4-methylthiophene-3-carboxylate, 4-cyanopyridine, potassium-tert-pentylate 1.7M in toluene and THF at room temperature to give the title compound as a yellow solid. LCMS method: 3, RT: 2.56 min, MI: 244[M+1].

›NMR · 5 of 14

5-isobutyl-2-pyridin-4-yl-thieno[2,3-d]pyrimidin-4-ol [AA-16] was prepared by reaction of 2-amino-4-isobutyl-thiophene-3-carboxylic acid ethyl ester, 4-cyanopyridine, potassium-tert-pentylate 1.7M in toluene and dioxane at room temperature to give the title compound as a brown solid. LCMS method: 2, RT: 3.14 min, MI: 286 [M+1].

5-ethyl-6-methyl-2-pyridin-4-yl-thieno[2,3-d]pyrimidin-4-ol [AA-17] was prepared by reaction of 2-amino-4-ethyl-5-methyl-thiophene-3-carboxylic acid ethyl ester, 4-cyanopyridine, potassium-tert-pentylate 1.7M in toluene and dioxane at room temperature to give the title compound as a brown solid. LCMS method: 2, RT: 3.26 min, MI: 272 [M+1].

6-ethyl-2-pyridin-4-yl-thieno[2, 3-d]pyrimidin-4-ol [AA-18] was prepared by reaction of 2-amino-5-ethyl-thiophene-3-carboxylic acid ethyl ester, 4-cyanopyridine, potassium-tert-pentylate 1.7M in toluene and dioxane at room temperature to give the title compound as a brown solid. LCMS method: 2, RT: 3.15 min, MI: 258 [M+1].

5,6-dimethyl-2-pyridin-4-yl-thieno[2,3-d]pyrimidin-4-ol [AA-19] was prepared by reaction of 2-amino-4,5-dimethyl-thiophene-3-carboxylic acid ethyl ester, 4-cyanopyridine, potassium-tert-pentylate 1.7M in toluene and dioxane at room temperature to give the title compound as a yellow solid. LCMS method: 3, RT: 3.05 min, MI: 258 [M+1].

4-hydroxy-5-methyl-2-pyridin-4-yl-thieno[2, 3-d]pyrimidine-6-carboxylic acid amide [AA-20] was prepared by reaction of 2-amino-5-carbamoyl-4-methyl-thiophene-3-carboxylic acid ethyl ester, 4-cyanopyridine, potassium-tert-pentylate 1.7M in toluene and dioxane at room temperature to give the title compound as a brown solid. LCMS method: 2, RT: 3.02 min, MI: 287 [M+1].

6-isopropyl-2-pyridin-4-yl-thieno[2,3-d]pyrimidin-4-ol [AA-21] was prepared by reaction of 2-amino-5-isopropyl-thiophene-3-carboxylic acid ethyl ester, 4-cyanopyridine, potassium-tert-pentylate 1.7M in toluene and dioxane at room temperature to give the title compound as a brown solid. LCMS method: 2, RT: 3.29 min, MI: 272 [M+1].

6-methyl-5-phenyl-2-pyridin-4-yl-thieno[2,3-d]pyrimidin-4-ol [AA-22] was prepared by reaction of 2-amino-5-methyl-4-phenyl-thiophene-3-carboxylic acid ethyl ester, 4-cyanopyridine, potassium-tert-pentylate 1.7M in toluene and dioxane at room temperature to give the title compound as a yellow solid. LCMS method: 2, RT: 3.79 min, MI: 320 [M+1].

5-(4-bromo-phenyl)-2-pyridin-4-yl-thieno[2,3-d]pyrimidin-4-ol [AA-23] was prepared by reaction of 2-amino-4-(4-bromo-phenyl)-thiophene-3-carboxylic acid ethyl ester, 4-cyanopyridine, potassium-tert-pentylate 1.7M in toluene and dioxane at room temperature to give the title compound as a brown solid. LCMS method: 2, RT: 4.16 min, MI: 384-386 [M+1].

General Synthesis of 5,6 Substituted 4-amino-2-pyridin-4-yl-thieno[2,3-d]pyrimidines of General Formula [F-1] (Scheme A3)

5,6-substituted 2-pyridin-4-yl-thieno[2,3-d]pyrimidin-4-ol derivatives of general formula [F-4] were reacted in an activation step using a chlorinating reagent such as phosphorus oxychloride or phosphorous pentachloride to yield the 5,6-substituted 4-chloro-2-pyridin-4-yl-thieno[2,3-d]pyrimidine derivatives of general formula [F-11], which were reacted with primary or secondary amine derivative of general formula [F-13] at ambient temperature. After reaction work up, typically by a liquid-liquid extraction or purification by acidic ion exchange catch-release, the crude reaction product was purified by reverse phase preparative HPLC.

Synthesis of 4-chloro-2-pyridin-4-yl-5,6,7,8-tetrahydro-benzo[4,5]thieno[2,3-d]pyrimidine [AA-24]

2-pyridin-4-yl-5,6,7,8-tetrahydro-benzo[4,5]thieno[2,3-d]pyrimidin-4-ol [AA-5] (1 g, 3.6 mmol) was stirred in POCl 3 (10 ml, 109 mmol) at reflux at 125° C. overnight. The mixture was allowed to cool down to room temperature and the excess of POCl 3 was removed under reduced pressure. The residue was carefully poured into ice-water and the solution was basified with a saturated solution of sodium hydrogen carbonate (50 ml) and the product was extracted into DCM (2×25 ml). The combined extracts were dried with magnesium sulfate, filtered and evaporated under reduced pressure to yield the title compound as a yellow-orange solid, which was used without further purification. LCMS method: 2, RT: 5.46 min, MI: 302 [M+1].

Synthesis of N,N-dimethyl-N′-(2-pyridin-4-yl-5,6,7,8-tetrahydro-benzo[4,5]thieno[2,3-d]pyrimidin-4-yl)-ethane-1,2-diamine [1]

To a solution of 4-chloro-2-pyridin-4-yl-5,6,7,8-tetrahydro-benzo[4,5]thieno[2,3-d]pyrimidine (50 mg, 0.166 mmol) [AA-24] in DMA (1 ml) was added N,N-dimethylethylenediamine (20 μl, 0.166 mmol) followed by Et 3 N (32 al, 0.232 mmol) and the mixture was stirred at room temperature for 2 hours. The reaction mixture was loaded onto a SCX-2 cartridge, and washed with methanol. The product was released from the cartridge using a solution of 2M ammonia/methanol. The ammonia/methanol eluent was concentrated under reduced pressure and the crude product was purified by preparative HPLC (method A) to yield to the title compound. LCMS method: 2: RT: 2.1 min, MI: 354 [M+1]. 1H NMR (300 MHz, DMSO): 8.70 (d, 2H) 8.20 (d, 2H), 3.7 (m, 2H), 2.9 (m, 2H), 2.8 (m, 2H), 2.6 (m, 2H), 2.3 (s, 6H), 1.8 (m, 4H).

The following compounds were prepared according to the general synthesis shown in scheme A3:

General Synthesis of 5,6 Substituted 4-amino-2-pyridin-4-yl-thieno[2,3-d]pyrimidine Derivatives of General Formula [F-I] (Scheme A4)

5,6 substituted 4-chloro-2-pyridin-4-yl-thieno[2,3-d]pyrimidine Derivatives of General Formula [F-11] were reacted with N-Boc protected primary or secondary diamine derivatives of general formula [F-13] at ambient temperature. After reaction work up, typically by a liquid-liquid extraction or purification by acidic ion exchange catch-release, the N-Boc derivatives were deprotected under acidic conditions with a strong acid such as TFA, TCA, methanesulfonic acid, HCl or H 2 SO 4 in a solvent such as DCM, DCE, THF, EtOH or MeOH and, the crude reaction product was purified by reverse phase preparative HPLC.

›NMR · 6 of 14

Synthesis of N*1*-(2-pyridin-4-yl-5,6,7,8-tetrahydro-benzo[4,5]thieno[2,3-d]pyrimidin-4-yl)-ethane-1,2-diamine [12]

To a solution of 4-chloro-2-pyridin-4-yl-5,6,7,8-tetrahydro-benzo[4,5]thieno[2,3-d]pyrimidine (50 mg, 0.166 mmol) [AA-24] in DMA (1 ml) was added (2-amino-ethyl)-carbamic acid tert-butyl ester (28 μl, 0.182 mmol) followed by Et 3 N (32 μl, 0.232 mmol), the mixture was stirred at room temperature for 2 hours. The product was extracted with DCM (1 ml) and washed with brine (2 ml). To the organic phase was added TFA (1 ml) and the mixture was stirred at room temperature for 1 hour. After completion the mixture was loaded onto a SCX-2 cartridge and washed with methanol. The product was released from the cartridge using a solution of 2M ammonia/methanol. The ammonia/methanol eluent was concentrated under reduced pressure and the crude product was purified by preparative HPLC (method A) to yield to the title compound. LCMS method: 2, RT: 2.07 min, MI: 326 [M+1]. 1H NMR (300 MHz, DMSO): 8.70 (d, 2H)., 8.28 (d, 2H), 3.88 (m, 2H), 3.14 (m, 2H), 2.94 (m, 2H), 2.78 (m, 2H), 1.84 (m, 4H).

The following compounds were prepared according to the general synthesis shown in Scheme A4:

General Synthesis of 5,6-substituted-(2,4,6-triisopropyl-benzenesulfonic acid)-2-pyridin-4-yl-thieno[2,3-d]pyrimidin-4-yl ester Derivatives of General Formula [F-12] (Scheme A5)

Compounds were prepared by the reaction of 5,6-substituted 2-pyridin-4-yl-thieno[2,3-d]pyrimidin-4-ol Derivatives of General Formula [F-4] (described in scheme A2) with 2,4,6-triisopropylbenzenesulfonyl chloride in halogenated solvent such as DCM or a polar aprotic solvent such as DMA, DMF, NMP with a tertiary alkylamine base such as Et 3 N, DIPEA or NMM and a catalytic amount of DMAP.

Synthesis of 2,4,6-triisopropyl-benzenesulfonic acid 2-pyridin-4-yl-5,6,7,8-tetrahydro-benzo[4,5]thieno[2,3-d]pyrimidin-4-yl ester [AA-25]

To a solution of 2-pyridin-4-yl-5,6,7,8-tetrahydro-benzo[4,5]thieno[2,3-d]pyrimidin-4-ol (1 g, 3.5 mmol) [AA-5] in DCM (10 ml) was added 2,4,6-triisopropylbenzenesulfonyl chloride (1.3 g, 4.2 mmol), Et 3 N (1.5 ml, 10.5 mmol) and DMAP (6 mg, 0.05 mmol). The mixture was stirred for at room temperature for one hour. After completion the mixture was diluted with water and the product was extracted into DCM (2×2 ml). The combined extracts were dried with magnesium sulfate, filtered and evaporated under reduced pressure to yield the title compound as a brown solid, which was used without further purification in the next step. LCMS method: 3, RT: 6.23 min, MI: 550 [M+1].

The following compounds were prepared according to the general synthesis shown in scheme A5:

2,4,6-triisopropyl-benzenesulfonic acid 7-methyl-2-pyridin-4-yl-5,6,7,8-tetrahydro-benzo[4,5]thieno[2,3-d]pyrimidin-4-yl ester [AA-26] was prepared by reaction of 7-methyl-2-pyridin-4-yl-5,6,7,8-tetrahydro-benzo[4,5]thieno[2,3-d]pyrimidin-4-ol [AA-6], 2,4,6-triisopropyl benzene sulfonyl chloride, Et 3 N, DMAP and DCM at room temperature to give the desired compound as a brown solid. LCMS method: 3, RT: 6.34 min, MI: 564 [M+1].

2,4,6-triisopropyl-benzenesulfonic acid 2-pyridin-4-yl-5,6,7,8,9,10-hexahydro-11-thia-1,3-diaza-cycloocta[a]inden-4-yl ester [AA-27] was prepared by reaction of 2-pyridin-4-yl-5,6,7,8,9,10-hexahydro-11-thia-1,3-diaza-cycloocta[a]inden-4-ol [AA-7], 2,4,6-triisopropylbenzenesulfonyl chloride, Et 3 N, DMAP and DCM at room temperature to give the desired compound as a brown solid. LCMS method: 3, RT: 6.47 min, MI: 578 [M+1].

2,4,6-triisopropyl-benzenesulfonic acid 2-pyridin-4-yl-6,7,8,9-tetrahydro-5H-10-thia-1,3-diaza-benzo[a]azulen-4-yl ester [AA-28] was prepared by reaction of 2-pyridin-4-yl-6,7,8,9-tetrahydro-5H-10-thia-1,3-diaza-benzo[a]azulen-4-ol [AA-8], 2,4,6-triisopropylbenzenesulfonyl chloride, Et 3 N, DMAP and DCM at room temperature to give the title compound as a brown solid. LCMS method: 3, RT: 6.39 min, MI: 564 [M+1].

2,4,6-triisopropyl-benzenesulfonic acid 1,4-Dioxa-spiro[7.7]-2-pyridin-4-yl-5,6,7,8-tetrahydro-benzo[4,5]thieno[2,3-d]pyrimidin-4-ol ester [AA-29] was prepared by reaction of 1,4-Dioxa-spiro[7.7]-2-pyridin-4-yl-5,6,7,8-tetrahydro-benzo[4,5]thieno[2,3-d]pyrimidin-4-ol [AA-9], 2,4,6-triisopropylbenzenesulfonyl chloride, Et 3 N, DMAP and DCM at room temperature to give the desired compound as a brown solid. LCMS method: 3, RT: 6.56 min, MI: 608 [M+1].

2,4,6-triisopropyl-benzenesulfonic acid 7,7-dimethyl-2-pyridin-4-yl-5,6,7,8-tetrahydro-benzo[4,5]thieno[2,3-d]pyrimidin-4-yl ester [AA-30] was prepared by reaction of 7,7-dimethyl-2-pyridin-4-yl-5,6,7,8-tetrahydro-benzo[4,5]thieno[2,3-d]pyrimidin-4-ol [AA-10], 2,4,6-triisopropyl benzenesulfonyl chloride, Et 3 N, DMAP and DCM at room temperature to give the desired compound as a brown solid. LCMS method: 3, RT: 6.37 min, MI: 578 [M+1].

2,4,6-triisopropyl-benzenesulfonic acid 2-pyridin-4-yl-5,8-dihydro-6H-pyrano[4′,3′:4,5]thieno[2,3-d]pyrimidin-4-yl ester [AA-31] was prepared by reaction of 2-pyridin-4-yl-5,8-dihydro-6H-pyrano[4′,3′:4,5]thieno[2,3-d]pyrimidin-4-ol [AA-12], 2,4,6-triisopropylbenzenesulfonyl chloride, Et 3 N, DMAP and DCM at room temperature to give the desired compound as a brown solid. LCMS method: 3, RT: 6.29 min, MI: 552 [M+1].

2,4,6-Triisopropyl-benzenesulfonic acid 2-pyridin-4-yl-5,8-dihydro-6H-thiopyrano[4′,3′:4,5]thieno[2,3-d]pyrimidin-4-yl ester [AA-32] was prepared by reaction of 2-pyridin-4-yl-5,8-dihydro-6H-thiopyrano[4′,3′:4,5]thieno[2,3-d]pyrimidin-4-ol [AA-13], 2,4,6-triisopropyl benzene sulfonyl chloride, Et 3 N, DMAP and DCM at room temperature to give the desired compound as a brown solid. LCMS method: 3, RT: 6.58 min, MI: 568 [M+1].

2,4,6-Triisopropyl-benzenesulfonic acid 7-benzoyl-2-pyridin-4-yl-5,6,7,8-tetrahydro-pyrido[4′,3′:4,5]thieno[2,3-d]pyrimidin-4-yl ester [AA-33] was prepared by reaction of (4-Hydroxy-2-pyridin-4-yl-5,8-dihydro-6H-pyrido[4′,3′:4,5]thieno[2,3-d]pyrimidin-7-yl)-phenyl-methanone [AA-14], 2,4,6-triisopropyl benzene sulfonyl chloride, Et 3 N, DMAP and DCM at room temperature to give the desired compound as a brown solid. LCMS method: 3, RT: 6.67 min, MI: 655 [M+1].

›NMR · 7 of 14

2,4,6-triisopropyl-benzenesulfonic acid 5-isobutyl-2-pyridin-4-yl-thieno[2,3-d]pyrimidin-4-yl ester [AA-34] was prepared by reaction of 5-Isobutyl-2-pyridin-4-yl-thieno[2,3-d]pyrimidin-4-ol [AA-16], 2,4,6-triisopropylbenzenesulfonyl chloride, Et 3 N, DMAP and DCM at room temperature to give the desired compound as a brown solid. LCMS method: 3, RT: 6.36 min, MI: 552 [M+1].

2,4,6-triisopropyl-benzenesulfonic acid 5-ethyl-6-methyl-2-pyridin-4-yl-thieno[2,3-d]pyrimidin-4-yl ester [AA-35] was prepared by reaction of 5-ethyl-6-methyl-2-pyridin-4-yl-thieno[2,3-d]pyrimidin-4-ol [AA-17], 2,4,6-triisopropylbenzenesulfonyl chloride, Et 3 N, DMAP and DCM at room temperature to give the desired compound as a brown solid. LCMS method: 3, RT: 6.29 min, MI: 538 [M+1].

2,4,6-triisopropyl-benzenesulfonic acid 6-ethyl-2-pyridin-4-yl-thieno[2,3-d]pyrimidin-4-yl ester [AA-36] was prepared by reaction of 6-ethyl-2-pyridin-4-yl-thieno[2,3-d]pyrimidin-4-ol [AA-18], 2,4,6-triisopropylbenzenesulfonyl chloride, Et 3 N, DMAP and DCM at room temperature to give the desired compound as a brown solid. LCMS method: 3, RT: 6.22 min, MI: 524 [M+1].

2,4,6-triisopropyl-benzenesulfonic acid 5,6-dimethyl-2-pyridin-4-yl-thieno[2,3-d]pyrimidin-4-yl ester [AA-37] was prepared by reaction of 5,6-dimethyl-2-pyridin-4-yl-thieno[2,3-d]pyrimidin-4-ol [AA-19], 2,4,6-triisopropylbenzenesulfonyl chloride, Et 3 N, DMAP and DCM at room temperature to give the desired compound as a brown solid. LCMS method: 3, RT: 6.18 min, MI: 524 [M+1].

2,4,6-triisopropyl-benzenesulfonic acid 6-carbamoyl-5-methyl-2-pyridin-4-yl-thieno[2,3-d]pyrimidin-4-yl ester [AA-38] was prepared by reaction of 4-hydroxy-5-methyl-2-pyridin-4-yl-thieno[2,3-d]pyrimidine-6-carboxylic acid amide [AA-20], 2,4,6-triisopropylbenzenesulfonyl chloride, Et 3 N, DMAP and DCM at room temperature to give the desired compound as a brown solid. LCMS method: 3, RT: 6.12 min, MI: 553 [M+1].

2,4,6-triisopropyl-benzenesulfonic acid 6-isopropyl-2-pyridin-4-yl-thieno[2,3-d]pyrimidin-4-yl ester [AA-39] was prepared by reaction of 6-isopropyl-2-pyridin-4-yl-thieno[2,3-d]pyrimidin-4-ol [AA-21], 2,4,6-triisopropylbenzenesulfonyl chloride, Et 3 N, DMAP and DCM at room temperature to give the desired compound as a brown solid. LCMS method: 3, RT: 6.24 min, MI: 538 [M+1].

2,4,6-triisopropyl-benzenesulfonic acid 6-methyl-5-phenyl-2-pyridin-4-yl-thieno[2,3-d]pyrimidin-4-yl ester [AA-40] was prepared by reaction of 6-methyl-5-phenyl-2-pyridin-4-yl-thieno[2,3-d]pyrimidin-4-ol [AA-22], 2,4,6-triisopropylbenzenesulfonyl chloride, Et 3 N, DMAP and DCM at room temperature to give the desired compound as a brown solid. LCMS method: 3, RT: 6.55 min, MI: 586 [M+1].

2,4,6-triisopropyl-benzenesulfonic acid 5-(4-bromo-phenyl)-2-pyridin-4-yl-thieno[2,3-d]pyrimidin-4-yl ester [AA-41] was prepared by reaction of 5-(4-bromo-phenyl)-2-pyridin-4-yl-thieno[2,3-d]pyrimidin-4-ol [AA-23], 2,4,6-triisopropylbenzenesulfonyl chloride, Et 3 N, DMAP and DCM at room temperature to give the desired compound as a brown solid. LCMS method: 3, RT: 6.66 min, MI: 651 [M+1].

General Synthesis of 5,6 Substituted 4-amino-2-pyridin-4-yl-thieno[2,3-d]pyrimidine Derivatives of General Formula [F-1] (Scheme A6)

5,6-substituted-(2,4,6-triisopropyl-benzenesulfonic acid)-2-pyridin-4-yl-thieno[2,3-d]pyrimidin-4-yl ester Derivatives of General Formula [F-12] [prepared in scheme A5] were reacted with a primary or secondary amino derivative of general formula [F-13] in a polar aprotic solvent such as DMA, DMF, NMP in the presence of a tertiary amine base such as Et 3 N, DIPEA or NMM at ambient temperature. After reaction work up, typically by a liquid-liquid extraction or purification by acidic ion exchange catch-release, the N-Boc derivatives were deprotected under acidic conditions with a strong acid such as TFA, TCA, methanesulfonic acid, HCl or H 2 SO 4 in a solvent such as DCM, DCE, THF, EtOH or MeOH and the crude reaction product was purified by reverse phase preparative HPLC

(2-pyridin-4-yl-5,6,7,8-tetrahydro-benzo[4,5]thieno[2,3-d]pyrimidin-4-yl)-(R)-pyrrolidin-3-yl-amine [19]

To a solution of 2,4,6-triisopropyl-benzenesulfonic acid 2-pyridin-4-yl-5,6,7,8-tetrahydro-benzo[4,5]thieno[2,3-d]pyrimidin-4-yl ester (60 mg, 0.110 mmol) [AA-25] in DMA (1 ml) was added (R)-(+)-1-Boc-3-aminopyrrolidine (23 mg, 0.121 mmol) followed by Et 3 N (30 al, 0.220 mmol) and the mixture was stirred at room temperature for 2 hours. Water (1 ml) was added and the mixture was extracted with DCM (2×ml), the extracts were combined and washed with brine (2 ml). To the organic phase was added TFA (1 ml) and the mixture was stirred at room temperature for 1 hour. After completion the mixture was loaded onto a SCX-2 cartridge and washed with methanol. The product was released from the cartridge using a solution of 2M ammonia/methanol. The ammonia/methanol eluent was concentrated under reduced pressure and the crude product was purified by preparative HPLC (method B) to yield to the desired compound. LCMS method: 4, RT: 4.43 min, MI: 352 [M+1]. 1H NMR (300 MHz, DMSO): 8.70 (d, 2H), 8.24 (d, 2H), 3.53 (m, 2H), 3.33 (m, 1H), 3.22 (m, 2H), 3.03 (m, 2H), 2.81 (m, 2H), 2.34 (m, 1H), 2.10 (m, 1H), 1.83 (m, 4H).

The following compounds were prepared according to the general synthesis shown in scheme A6:

General Synthesis of 5,6 Substituted 4-amino-2-pyridin-4-yl-thieno[2,3-d]pyrimidine Derivatives of General Formula [F-1] (Scheme A7)

Compounds were synthesised starting from an N-Boc protected amino acid derivative of general formula [F-14] which was converted to a primary carboxamide derivative of general formula [F-15] by reaction with di-tert-butyl dicarbonate in the presence of a base such as pyridine or 2,6-lutidine and ammonium carbonate in an anhydrous solvent such as dioxane, THF or diethylether. The resultant primary carboxamide derivative was reduced to the amino derivative of general formula [F-16] with a borane reducing agent such as BH 3 . THF or BH 3 . SMe 2 in an anhydrous solvent such as THF, dioxane or diethylether. The resultant amino derivative was then reacted with a 5,6-substituted-(2,4,6-triisopropyl-benzenesulfonic acid)-2-pyridin-4-yl-thieno[2,3-d]pyrimidin-4-yl ester [F-12] [prepared in scheme A5] in a polar aprotic solvent such as DMA, DMF, NMP in the presence of a tertiary amine base such as Et 3 N, DIPEA or NMM at ambient temperature. After reaction work up, typically by a liquid-liquid extraction or purification by acidic ion exchange catch-release, the N-Boc derivatives were deprotected under acidic conditions with a strong acid such as TFA, TCA, methanesulfonic acid, HCl or H 2 SO 4 in a solvent such as DCM, DCE, THF, EtOH or MeOH and the crude reaction product was purified by reverse phase preparative HPLC.

›NMR · 8 of 14

[(S)-1-carbamoyl-2-p-tolyl-ethyl]-carbamic acid tert-butyl ester [AA-42]

To a stirred solution of (S)-2-tert-butoxycarbonylamino-3-p-tolyl-propionic acid (560 mg, 2 mmol), pyridine (100 al, 1.2 mmol) and di-tert-butyl dicarbonate (568 mg, 2.6 mmol) in dry dioxane (4 ml) was added ammonium carbonate (240 mg, 2.5 mmol). The mixture was stirred for 4 hours at room temperature. Ethylacetate was added and the mixture was washed with water and a solution of 5% H 2 SO 4 . The combined organic phases were dried with magnesium sulfate, filtered and evaporated to provide the title compound as a white solid. LCMS method: 2, RT: 3.69 min, MI: 279 [M+1].

[(S)-2-amino-1-(4-methyl-benzyl)-ethyl]-carbamic acid tert-butyl ester [AA-43]

A 1M solution of BH 3 in THF (15 ml, 15 mmol) was added dropwise to ((S)-1-carbamoyl-2-p-tolyl-ethyl)-carbamic acid tert-butyl ester [AA-42] (560 mg, 2 mmol), the solution was stirred overnight at room temperature then subsequently hydrolysed by slow addition of excess of 10% acetic acid/MeOH (30 ml) and stirred at room temperature for a further 2 hours. The solvent was removed under reduced pressure the residue dissolved in methanol and passed through a SCX-2 cartridge and washed with methanol. The product was released from the cartridge using a solution of 2M ammonia/methanol. The solvent was evaporated to provide the title compound as a white solid. LCMS method: 2, RT: 2.42 min, MI: 265 [M+1].

[(S)-1-carbamoyl-2-(2-methoxy-phenyl)-ethyl]-carbamic acid tert-butyl ester [AA-44]

To a stirred solution of (S)-2-tert-butoxycarbonylamino-3-(2-methoxy-phenyl)-propionic acid (998 mg, 3.3 mmol), pyridine (300 μl, 3.6 mmol) and di-tert-butyl dicarbonate (1.16 g, 5.32 mmol) in dry dioxane (10 ml) was added ammonium carbonate (512 mg, 5.32 mmol). The mixture was stirred for 4 hours at room temperature. Ethylacetate was added and after washings with water and a solution of 5% H 2 S04. The combined organic phases were dried with magnesium sulfate, filtered and evaporated to provide the title compound as a white solid. LCMS method: 4, RT: 3.09 min, MI: 295 [M+1].

[(S)-2-amino-1-(2-methoxy-benzyl)-ethyl]-carbamic acid tert-butyl ester [AA-45]

A 1M solution of BH 3 in THF (15 ml, 15 mmol) was added dropwise to [(S)-1-carbamoyl-2-(2-methoxy-phenyl)-ethyl]-carbamic acid tert-butyl ester [AA-44] (980 mg, 3.32 mmol), the solution was stirred overnight at room temperature then subsequently hydrolysed by slow addition of excess of 10% acetic acid/MeOH (30 ml) and stirred at room temperature for a further 2 hours. The solvent was removed under reduced pressure the residue dissolved in methanol and passed through a SCX-2 cartridge and washed with methanol. The product was released from the cartridge using a solution of 2M ammonia/methanol. The solvent was evaporated to provide the title compound as a white solid. LCMS method: 2, RT: 2.40 min, MI: 281 [M+1].

(S)-1-(4-methyl-benzyl)-3-(2-pyridin-4-yl-5,6,7,8-tetrahydro-benzo[4,5]thieno[2,3-d]pyrimidin-4-yl)-propylamine [46]

To a solution of 2,4,6-triisopropyl-benzenesulfonic acid 2-pyridin-4-yl-5,6,7,8-tetrahydro-benzo[4,5]thieno[2,3-d]pyrimidin-4-yl ester (100 mg, 0.182 mmol) [AA-25] in DMA (2 ml) was added [(S)-2-amino-1-(4-methyl-benzyl)-ethyl]-carbamic acid tert-butyl ester [AA-(43] (58 mg, 0.218 mmol) followed by Et 3 N (76 μl, 0.546 mmol), the mixture was stirred at room temperature for 2 hours. Then the product was extracted with DCM (2 ml) and washed with brine (3 ml). To the organic phase was added TFA (2 ml) and the mixture was stirred at room temperature for 1 hour. After completion the mixture was loaded onto a SCX-2 cartridge and washed with methanol. The product was released from the cartridge using a solution of 2M ammonia/methanol. The ammonia/methanol eluent was concentrated under reduced pressure and the crude product was purified by preparative HPLC (method B) to yield to the title compound. LCMS method: 4, RT: 4.85 min, MI: 430 [M+1]. 1H NMR (300 MHz, DMSO): 8.64 (d, 2H), 7.99 (d, 2H), 7.18 (m, 4H), 3.89 (m, 2H), 3.49 (m, 2H), 2.98 (m, 1H), 2.94 (m, 2H), 2.78 (m, 2H), 2.31 (s, 3H), 1.83 (m, 4H).

The following compounds were prepared according to the general synthesis shown in Scheme A7:

General Synthesis of (S)-3-(2 or 3-hydroxy-phenyl)-N*1*-(2-pyridin-4-yl-5,6,7,8-tetra hydro-benzo[4,5]thieno[2,3-d]pyrimidin-4-yl)-pro pane-1,2-diamine Derivatives of General Formula [F-18] (Scheme A8)

Compounds were synthesised starting from (S)-3-(2 or 3-methoxy-phenyl)-N*1*-(2-pyridin-4-yl-5,6,7,8-tetrahydro-benzo[4,5]thieno[2,3-d]pyrimidin-4-yl)-propane-1,2-diamine Derivatives of General Formula [F-17] (described in scheme A7) by a de-methylation reaction with a Lewis acid such as BBr 3 or AlCl 3 in a chlorinated solvent such as DCM or DCE at low reaction temperature. After reaction work up, typically by a liquid-liquid extraction or purification by acidic ion exchange catch-release, the crude reaction product was purified by reverse phase preparative HPLC.

Synthesis of 2-[(S)-2-amino-3-(2-pyridin-4-yl-5,6,7,8-tetrahydro-benzo[4,5]thieno[2,3-d]pyrimidin-4-ylamino)-propyl]-phenol [65]

To a solution of (S)-3-(2-methoxy-phenyl)-N*1*-(2-pyridin-4-yl-5,6,7,8-tetrahydro-benzo[4,5]thieno[2,3-d]pyrimidin-4-yl)-propane-1,2-diamine [49] (30 mg, 0.06 mmol) in DCM (1 ml) at −30° C. was added dropwise a solution of 1 M BBr 3 in DCM (180 al, 0.180 mmol) under a nitrogen atmosphere. The reaction mixture was stirred at −30° C. for 1 hour and then stirred overnight at room temperature. The crude reaction mixture was concentrated under reduced pressure and then purified by preparative HPLC (method A) to yield to the title compound. LCMS method: 3, RT: 2.28 min, MI: 432 [M+1].

The following compounds were prepared according to the general synthesis shown in Scheme A8:

General Synthesis of 5,6 Substituted 4-amino-2-pyridin-4-yl-thieno[2,3-d]pyrimidine Derivatives of General Formula [F-I] (Scheme A9)

Compounds were synthesised starting from the hydrochloride or hydrobromide salt of an α-amino acid carboxamide derivative of general formula [F-19] which was converted to the free base by reaction with a base such as Et 3 N or DIPEA in a chlorinated solvent such as DCM or DCE. The resultant free base was then reduced to a diamino derivative of general formula [F-20] by reaction with a borane reducing agent such as BH 3 . THF or BH 3 . SMe 2 in an anhydrous solvent such as THF, dioxane or diethylether. The resultant diamino derivative [F-20] was then reacted with a 5,6-substituted-(2,4,6-triisopropyl-benzenesulfonic acid)-2-pyridin-4-yl-thieno[2,3-d]pyrimidin-4-yl ester of general formula [F-12] [prepared in scheme A5] in a polar aprotic solvent such as DMA, DMF, NMP in the presence of a tertiary amine base such as Et 3 N, DIPEA or NMM at ambient temperature. After reaction work up, typically by a liquid-liquid extraction or purification by acidic ion exchange catch-release the crude reaction product was purified by reverse phase preparative HPLC.

›NMR · 9 of 14

Synthesis of (S)-3-phenyl-propane-1,2-diamine [AA-46]

To a suspension of (S)-2-amino-3-phenyl-propionamide hydrochloride (540 mg, 2.7 mmol) in DCM (5 ml) was added Et 3 N (380 μl, 2.7 mmol). The suspension was stirred for 2 h at room temperature, the resulting solid was filtered and the filtrate was concentrated under reduced pressure to yield to a white solid to which was added dropwise a 1M solution of BH 3 in THF (20 ml, 20 mmol) the solution was stirred overnight at reflux. After cooling the solution was hydrolysed by slow addition of excess of 10% acetic acid/MeOH (30 ml) and refluxed for a further 2 hours. The solvent was removed under reduced pressure, the residue dissolved in methanol and passed through a SCX-2 cartridge and washed with methanol. The product was released from the cartridge using a solution of 2M ammonia/methanol. The solvent was evaporated to provide the title compound as a white solid. LCMS method: 1, RT: 0.36 min, MI: 151 [M+1].

Synthesis of (S)—N*1*-(2-pyridin-4-yl-5,6,7,8-tetrahydro-benzo[4,5]thieno[2,3-d]pyrimidin-4-yl)-butane-1,2-diamine [67]

To a solution of 2,4,6-triisopropyl-benzenesulfonic acid 2-pyridin-4-yl-5,6,7,8-tetrahydro-benzo[4,5]thieno[2,3-d]pyrimidin-4-yl ester [AA-25] (100 mg, 0.180 mmol) in DMA (2 ml) was added (S)-3-phenyl-propane-1,2-diamine [AA-46] (30 mg, 0.180 mmol) followed by Et 3 N (50 al, 0.36 mmol), the mixture was stirred at room temperature for 2 hours. After completion the mixture was loaded onto a SCX-2 cartridge and washed with methanol. The product was released from the cartridge using a solution of 2M ammonia/methanol. The ammonia/methanol eluent was concentrated under reduced pressure and the crude product was purified by preparative HPLC (method A) to yield to the title compound. LCMS method: 4, RT: 2.51 min, MI: 416 [M+1]. 1H NMR (300 MHz, DMSO): 8.64 (d, 2H), 7.95 (d, 2H), 7.36 (m, 5H), 3.92 (m, 2H), 3.46 (m, 2H), 2.92 (m, 1H), 2.91 (m, 2H), 2.79 (m, 2H), 1.83 (m, 4H).

The following compounds were prepared according to the general synthesis shown in Scheme A9:

General Synthesis of 5,6 Substituted 4-amino-2-pyridin-4-yl-thieno[2,3-d]pyrimidine Derivatives of General Formula [F-I] (Scheme A10)

5, 6-substituted 2-pyridin-4-yl-thieno[2, 3-d]pyrimidin-4-ol Derivatives of General Formula [F-4] [prepared in scheme A2] were subjected to a activation reaction by reaction with a solid supported sulfonyl chloride derivative such as benzenesulfonyl chloride on polystyrene resin in a polar aprotic solvent such as DMA, DMF, NMP in the presence of a tertiary amine base such as Et 3 N, DIPEA or NMM with a catalytic amount of DMAP at ambient temperature. Excess reagents and reactants were removed by filtration and washing the polystyrene resin with solvents such as DCM, DMF, THF. The polymer supported reagent of general formula [F-21] was then reacted with an N-Boc protected diamino derivative of general formula [F-13] in a polar aprotic solvent such as DMA, DMF, NMP in the presence of a tertiary amine base such as Et 3 N, DIPEA or NMM at ambient temperature. The resin was filtered through a PTFE frit and washed with a solvent such as DCM or ethylacetate, the filtrate was combined and after reaction work up, typically by a liquid-liquid extraction or purification by acidic ion exchange catch-release, the N-Boc derivatives were deprotected under acidic conditions with a strong acid such as TFA, TCA, methanesulfonic acid, HCl or H 2 SO 4 in a solvent such as DCM, DCE, THF, EtOH or MeOH and the crude reaction product was purified by reverse phase preparative HPLC.

Synthesis of Polystyrene Supported Benzenesulfonic Acid 2-pyridin-4-yl-6,7,8,9-tetrahydro-5H-10-thia-1,3-diaza-benzo[a]azulen-4-yl ester [AA-47]

2-pyridin-4-yl-6,7,8,9-tetrahydro-5H-10-thia-1,3-diaza-benzo[a]azulen-4-ol [AA-8](70 mg, 0.241 mmol) and PS-TSCl (70 mg, 0.241 mmol) were placed into sealed filter cartridge. DMA was added (2 ml) followed by Et 3 N (100 μl, 0.723 mmol) and DMAP (1.5 mg, 0.001 mmol). The reaction mixture was shaken for 3 hours at room temperature and then the resin was filtered, through a PTFE frit. The resin was washed with DCM to yield to the polystyrene supported benzenesulfonic acid 2-pyridin-4-yl-6,7,8,9-tetrahydro-5H-10-thia-1,3-diaza-benzo[a]azulen-4-yl ester [AA-77] which was used in the next step without further purification.

Synthesis of N*1*-(2-pyridin-4-yl-6,7,8,9-tetrahydro-5H-10-thia-1,3-diaza-benzo[a]azulen-4-yl)-ethane-1,2-diamine [84]

The polystyrene supported benzenesulfonic acid 2-pyridin-4-yl-6,7,8,9-tetrahydro-5H-10-thia-1,3-diaza-benzo[a]azulen-4-yl ester [AA-47] (70 mg, 0.24 mmol) was placed in a filter cartridge and DMA (2 ml) was added followed by Boc-ethylenediamine (39 mg, 0.241 mmol) and Et 3 N (67 μl, 0.482 mmol). The reaction was shaken overnight at room temperature. The resin was filtered through a PTFE frit and washed with ethylacetate. The filtrate was concentrated under reduced pressure and the crude product was dissolved in DCM (2 ml) and TFA (2 ml) was added and the mixture was stirred at room temperature for 1 hour. After completion the mixture was loaded onto a SCX-2 cartridge and washed with methanol. The product was released from the cartridge using a solution of 2M ammonia/methanol. The ammonia/methanol eluent was concentrated under reduced pressure and the crude product was purified by preparative HPLC (method A) to yield to the title compound. LCMS method: 2, RT: 3.22 min, MI: 340 [M+1].

The following compounds were prepared according to the general synthesis shown in Scheme A10:

General Synthesis of Pyridyl Substituted 4-amino-2-pyridin-4-yl-thieno[2,3-d]pyrimidine Derivatives of General Formula [F-1] (Scheme A11)

A 2,4-dichloro-5,6,7,8-tetrahydro-enzo[4,5]thieno[2,3-d]pyrimidine derivative of general formula [F-21] was reacted with primary and secondary amino derivative of general formula [F-13] in a polar aprotic solvent such as DMA, DMF, NMP in the presence of a tertiary amine base such as Et 3 N, DIPEA or NMM at ambient temperature. Following reaction work up, typically by a liquid-liquid extraction or purification by acidic ion exchange catch-release, the amino derivative of general formula [F-23] was reacted with pyridyl boronic acids or boronate esters of general formula [F-24] in the presence of a palladium catalyst such as Pd(PPh 3 ) 4 or Pd(PPh 3 ) 2 Cl 2 a base such as Et 3 N, KOH, Na 2 CO 3 or NaOH in a polar solvent such as EtOH, THF, DMA or dioxane at high temperature either by heating thermally or using a microwave reactor. Following reaction work up, typically by a liquid-liquid extraction or purification by acidic ion exchange catch-release the crude reaction product was purified by reverse phase preparative HPLC.

›NMR · 10 of 14

Synthesis of [2-(2-chloro-5,6,7,8-tetrahydro-benzo[4,5]thieno[2,3-d]pyrimidin-4-ylamino)-ethyl]-carbamic acid tert-butyl ester [AA-49]

To a solution of 2,4-dichloro-5,6,7,8-tetrahydro-benzo[4,5]thieno[2,3-d]pyrimidine [AA-(48] (100 mg, 0.387 mmol) in DMA (5 ml) was added Boc-ethylenediamine (62 mg, 0.387 mmol) followed by Et 3 N (110 μl, 0.774 mmol), the mixture was stirred at room temperature for 2 hours. Then the product was extracted with DCM (2×10 ml) and washed with brine (2×10 ml). The combined organic phases were dried with magnesium sulfate, filtered and evaporated to provide a brown solid. The residue was used without further purification in the next step. LCMS method: 1, RT: 6.26 min, MI: 383 [M+1].

Synthesis of N*1*-[2-(3-fluoro-pyridin-4-yl)-5,6,7,8-tetrahydro-benzo[4,5]thieno[2,3-d]pyrimidin-4-yl]-ethane-1,2-diamine [97]

A microwave vial was charged with [2-(2-chloro-5,6,7,8-tetrahydro-benzo[4,5]thieno[2,3-d]pyrimidin-4-ylamino)-ethyl]-carbamic acid tert-butyl ester [AA-49](80 mg, 0.210 mmol), 3-fluoropyridine-4-boronic acid hydrate (38 mg, 0.24 mmol), tetrakis (triphenyl phosphine) palladium (12 mg, 0.01 mmol), Na 2 CO 3 (2M in water, 300 μl, 0.6 mmol) and EtOH (1 ml). The reaction was heated to 150° C. for 15 minutes under microwave irradiation. The mixture was then filtered through a plug of silica, washed with methanol and the filtrate was concentrated under reduced pressure. To a solution of the crude product in DCM (2 ml) was added TFA (2 ml) and the mixture was stirred at room temperature for 1 hour. After completion the mixture was loaded onto a SCX-2 cartridge and washed with methanol. The product was released from the cartridge using a solution of 2M ammonia/methanol. The ammonia/methanol eluent was concentrated under reduced pressure and the crude product was purified by preparative HPLC (method A) to yield to the title compound. LCMS method: 2, RT: 2.41 min, MI: 344 [M+1].

The following compounds were prepared according to the general synthesis shown in Scheme A11:

Synthesis of 4-[4-((S)-2-Amino-3-phenyl-propylamino)-5,6,7,8-tetrahydro-benzo[4,5]thieno[2,3-d]pyrimidin-2-yl]-pyridin-3-ol [103] (Scheme A12)

To a solution of (S)—N*1*-[2-(3-methoxy-pyridin-4-yl)-5,6,7,8-tetrahydro-benzo[4,5]thieno[2,3-d]pyrimidin-4-yl]-3-phenyl-propane-1,2-diamine (prepared according to the general synthesis shown in scheme A11) [102] (30 mg, 0.06 mmol) in DCM (1 ml) cooled to −30° C. was added dropwise a solution of 1 M BBr 3 in DCM (180 al, 0.180 mmol) under nitrogen. The reaction mixture was stirred at −30° C. for 1 hour and stirred overnight at room temperature. The residue was concentrated under reduced pressure and then dissolved in DMSO and purified by preparative HPLC (method B) to yield to the title compound. LCMS method: 4, RT: 4.43 min, MI: 432 [M+1]. 1H NMR (300 MHz, DMSO): 8.30 (d, 1H), 8.10 (d, 1H), 7.81 d, 1H), 7.28 (m, 5H), 3.46 (m, 2H), 3.40 (m, 1H), 2.96 (m, 2H), 2.79 (m, 4H), 1.83 (m, 4H).

General Synthesis of 1-[4-(2-amino-ethylamino)-2-pyridin-4-yl-5,8-dihydro-6H-pyrido[4′,3′:4,5]thieno[2,3-d]pyrimidin-7-yl]-alkylanone Derivatives of General Formula [[F-26] (Scheme A13)

4-benzenesulfonyloxy-2-pyridin-4-yl-5,8-dihydro-6H-pyrido[4′,3′:4,5]thieno[2,3-d]pyrimidine-7-carboxylic acid tert-butyl ester [AA-11] (described in scheme A2) was subjected to an activation by reaction with a solid supported sulfonyl chloride derivative such as benzenesulfonyl chloride on polystyrene in a polar aprotic solvent such as DMA, DMF, NMP in the presence of a tertiary amine base such as Et 3 N, DIPEA or NMM with a catalytic amount of DMAP at ambient temperature. Excess reagents and reactants were removed by filtration and washing the polystyrene resin with a solvent such as DCM, DMF, THF. The polymer supported reagent was then reacted with (2-amino-ethyl)-carbamic acid allyl ester in a polar aprotic solvent such as DMA, DMF, NMP in the presence of a tertiary amine base such as Et 3 N, DIPEA or NMM at ambient temperature. The resin was filtered through a PTFE frit and washed with a solvent such as DCM or ethylacetate, the extracts were combined and after reaction work up, typically by a liquid-liquid extraction or purification by acidic ion exchange catch-release, the N-Boc derivative was deprotected under acidic conditions with a strong acid such as TFA, TCA, methanesulfonic acid, HCl or H 2 SO 4 in a solvent such as DCM, DCE, THF, EtOH or MeOH to give [2-(2-pyridin-4-yl-5,6,7,8-tetrahydro-pyrido[4′,3′:4,5]thieno[2,3-d]pyrimidin-4-ylamino)-ethyl]-carbamic acid allyl ester [AA-50]. Reaction of pyridin-4-yl-5,6,7,8-tetrahydro-pyrido[4′,3′:4,5]thieno[2,3-d]pyrimidin-4-ylamino)-ethyl]-carbamic acid allyl ester [AA-50] with an acyl chloride derivative of general formula [F-27] in a polar aprotic solvent such as DMA, DMF, NMP in the presence of a tertiary amine base such as Et 3 N, DIPEA or NMM gave the N-acylated [F-25] derivative which was subjected to an N-allyl deprotection reaction with polymer supported palladium, polymer supported borohydride in DCM, MeOH and water to give the corresponding amino derivates [F-26]. Following reaction work up, typically by a liquid-liquid extraction or purification by acidic ion exchange catch-release the crude reaction product was purified by reverse phase preparative HPLC.

Synthesis of Polystyrene Supported 4-benzenesulfonyloxy-2-pyridin-4-yl-5,8-dihydro-6H-pyrido[4′,3′:4,5]thieno[2,3-d]pyrimidine-7-carboxylic acid tert-butyl ester [AA-51]

2-pyridin-4-yl-6,7,8,9-tetrahydro-5H-10-thia-1,3-diaza-benzo[a]azulen-4-ol [AA-11](700 mg, 1.83 mmol) and PS-TSCl (1.2 g, 2.92 mmol) were placed into filter cartridge closed with a stopper. DMA (10 ml) was added followed by Et 3 N (510 μl, 3.66 mmol) and DMAP (11 mg, 0.09 mmol). The reaction was shaken for 3 hours at room temperature and then the resin was filtered through a PTFE frit. The resin was washed with DCM (6 ml) to yield to the polystyrene supported 4-benzenesulfonyloxy-2-pyridin-4-yl-5,8-dihydro-6H-pyrido[4′,3′:4,5]thieno[2,3-d]pyrimidine-7-carboxylic acid tert-butyl ester [AA-51], which was used in the next step without further purification.

›NMR · 11 of 14

Synthesis of [2-(2-pyridin-4-yl-5,6,7,8-tetrahydro-pyrido[4′,3′:4,5]thieno[2,3-d]pyrimidin-4-ylamino)-ethyl]-carbamic Acid Allyl Ester [AA-50]

To the polystyrene supported 4-benzenesulfonyloxy-2-pyridin-4-yl-5,8-dihydro-6H-pyrido[4′,3′:4,5]thieno[2,3-d]pyrimidine-7-carboxylic acid tert-butyl ester [AA-51] placed into a filter cartridge was added DMA (2 ml) followed by allyl-N-(2-aminoethyl)carbamate hydrochloride (397 mg, 2.2 mmol) and Et 3 N (510 μl, 3.66 mmol). The reaction was shaken overnight at room temperature. The resin was filtered through a PTFE frit and washed with ethylacetate (6 ml) followed by DCM (6 ml). The extracts were combined and evaporated under reduced pressure. The crude reaction product was dissolved in DCM (25 ml) and washed with sodium hydrogen carbonate (20 ml) then brine (20 ml), dried with magnesium sulfate, filtered and evaporated under reduced pressure to provide an orange solid. To a solution of the crude product in DCM (5 ml) was added TFA (5 ml) and the mixture was stirred at room temperature for 1 hour. After completion the mixture was loaded onto a SCX-2 cartridge and washed with methanol. The product was released from the cartridge using a solution of 2M ammonia/methanol. The ammonia/methanol eluent was concentrated under reduced pressure and the crude product was used without further purification in the next step. LCMS method: 1, RT: 4.23 min, MI: 411 [M+1].

Synthesis of {2-[7-(2,2-dimethyl-propionyl)-2-pyridin-4-yl-5,6,7,8-tetrahydro-pyrido[4′,3′:4,5]thieno[2,3-d]pyrimidin-4-ylamino]-ethyl}-carbamic acid allyl ester [AA-52]

To a solution of [2-(2-pyridin-4-yl-5,6,7,8-tetrahydro-pyrido[4′,3′:4,5]thieno[2,3-d]pyrimidin-4-ylamino)-ethyl]-carbamic acid allyl ester [AA-50] (50 mg, 0.121 mmol) in DMA (1 ml) at −10° C. were added trimethylacetyl chloride (16 al, 0.133 mmol) and N,N,-di-isopropyethylamine (60 al, 0.363 mmol). The mixture was stirred overnight. After completion the reaction mixture was treated with water (2 ml) and brine (2 ml) and extracted with DCM (3 ml). The organics were evaporated under vacuum and the crude product was used without further purification in the next step.

Synthesis of 1-[4-(2-amino-ethylamino)-2-pyridin-4-yl-5,8-dihydro-6H-pyrido[4′,3′:4,5]thieno[2,3-d]pyrimidin-7-yl]-2,2-dimethyl-propan-1-one [104]

To a solution of {2-[7-(2,2-dimethyl-propionyl)-2-pyridin-4-yl-5,6,7,8-tetrahydro-pyrido[4′,3′:4,5]thieno[2,3-d]pyrimidin-4-ylamino]-ethyl}-carbamic acid allyl ester [AA-52](50 mg, 0.121 mmol) in DCM:MeOH:H 2 O (5:4:1) (2 ml) in a filter cartridge were added PS—PPh 3 -Pd (18 mg, 0.002 mmol) and MP-BH 4 (116 mg, 0.363 mmol). The reaction was shaken for 2 h after then the solution was filtered through Na 2 SO 4 plug. The filtrate was concentrated under reduced pressure and the crude residue was purified by preparative HPLC (method A) to yield to the title compound. LCMS method: 2, RT: 2.26 min, MI: 411 [M+1].

The following compounds were prepared according to the general synthesis shown in Scheme A13:

General Synthesis of N*1*-(7-alkyl-2-pyridin-4-yl-5,6,7,8-tetrahydro-pyrido[4′,3′:4,5]thieno[2,3-d]pyrimidin-4-yl)-ethane-1,2-diamine Derivatives of General Formula [F-28] (Scheme A14)

[2-(2-pyridin-4-yl-5,6,7,8-tetrahydro-pyrido[4′,3′:4,5]thieno[2,3-d]pyrimidin-4-ylamino)-ethyl]-carbamic acid allyl ester [AA-50] was reacted in reductive amination reaction with aldehyde derivative of general formula [F-30] and a solid supported borohydride reagent in acetic acid and a polar protic solvent such as MeOH or EtOH. The N-alkylated derivative of general formula [F-29] was subjected to an N-allyl deprotection reaction with polymer supported palladium, polymer supported borohydride in DCM, MeOH and water to provide the amino derivative [F-28]. Following reaction work up, typically filtration through a PTFE frit followed by a liquid-liquid extraction or purification by acidic ion exchange catch-release the crude reaction product was purified by reverse phase preparative HPLC.

Synthesis of [2-(7-ethyl-2-pyridin-4-yl-5,6,7,8-tetrahydro-pyrido[4′,3′:4,5]thieno[2,3-d]pyrimidin-4-ylamino)-ethyl]-carbamic Acid Allyl Ester [AA-53]

To a solution of [2-(2-pyridin-4-yl-5,6,7,8-tetrahydro-pyrido[4′,3′:4,5]thieno[2,3-d]pyrimidin-4-ylamino)-ethyl]-carbamic acid allyl ester [AA-50] (50 mg, 0.121 mmol) in MeOH (1 ml) in a filter cartridge were added MP-BH 4 (144 mg, 0.290 mmol) followed by acetaldehyde (4 μl, 0.075 mmol) and acetic acid (7 μl, 0.121 mmol). The reaction was shaken overnight at room temperature and then filtered through a PTFE frit. The filtrate was evaporated under reduced pressure and the resulting residue was dissolved in methanol and the mixture was loaded onto a SCX-2 cartridge and washed with methanol. The product was released from the cartridge using a solution of 2M ammonia/methanol. The ammonia/methanol eluent was concentrated under reduced pressure to yield the title compound which was used without further purification in the next step.

Synthesis of N**-(7-ethyl-2-pyridin-4-yl-5,6,7,8-tetrahydro-pyrido[4′,3′:4,5]thieno[2,3-d]pyrimidin-4-yl)-ethane-1,2-diamine [112]

To a solution of [2-(7-ethyl-2-pyridin-4-yl-5,6,7,8-tetrahydropyrido[4′,3′:4,5]-thieno[2,3-d]pyrimidin-4-ylamino)-ethyl]-carbamic acid allyl ester [AA-53] (50 mg, 0.121 mmol) in DCM:MeOH:H2O (5:4:1) (2 ml) in a filter cartridge were added PS—PPh 3 -Pd (18 mg, 0.002 mmol) and MP-BH 4 (116 mg, 0.363 mmol). The reaction was shaken for 2 h after completion the solution was filtered through Na 2 SO 4 plug. The filtrate was concentrated under reduced pressure and the residue purified by preparative HPLC (method A) to yield to the title compound. LCMS method: 2, RT: 1.89 min, MI: 355 [M+1].

The following compounds were prepared according to the general synthesis shown in Scheme A14:

General Synthesis of 4-(4-alkyl-piperazin-1-yl)-2-pyridin-4-yl-5,6,7,8-tetrahydro-benzo[4,5]thieno[2,3-d]pyrimidine Derivatives of General Formula [F-31] (Scheme A15)

4-piperazin-1-yl-2-pyridin-4-yl-5,6,7,8-tetrahydro-benzo[4,5]thieno[2,3-d]pyrimidine [3] was subjected to a reductive amination reaction with aldehyde Derivatives of General Formula [F-30] and a solid supported borohydride reagent in acetic acid and a polar protic solvent such as MeOH or EtOH to yield the alkylated derivative [F-27]. Following reaction work up, typically by a liquid-liquid extraction or purification by acidic ion exchange catch-release the crude reaction product was purified by reverse phase preparative HPLC.

›NMR · 12 of 14

Synthesis of 4-(4-benzyl-piperazin-1-yl)-2-pyridin-4-yl-5,6,7,8-tetrahydro-benzo[4,5]thieno[2,3-d]pyrimidine [115]

To a solution of 4-piperazin-1-yl-2-pyridin-4-yl-5,6,7,8-tetrahydro-benzo[4,5]thieno[2,3-d]pyrimidine [3] (50 mg, 0.142 mmol) in MeOH (2 ml) in a filter cartridge were added MP-BH 4 (170 mg, 0.341 mmol), p-anisaldehyde (11 μl, 0.09 mmol) and acetic acid (8 μl, 0.142 mmol). The reaction was shaken overnight at room temperature and then filtered through a PTFE frit. The filtrate was evaporated under reduced pressure and the resulting residue was dissolved in methanol and the mixture was loaded onto a SCX-2 cartridge and washed with methanol. The product was released from the cartridge using a solution of 2M ammonia/methanol. The ammonia/methanol eluent was concentrated under reduced pressure and purified by preparative HPLC (method A) to yield to the title compound. LCMS method: 2, RT: 2.61 min, MI: 456 [M+1]. 1H NMR (300 MHz, DMSO): 8.70 (d, 2H), 8.22 (d, 2H), 7.21 (d, 2H), 7.15 (d, 2H), 3.47 (m, 7H), 2.90 (m, 5H), 2.54 (s, 2H), 2.28 (s, 3H), 1.87 (br s, 2H), 1.73 (br s, 2H).

The following compounds were prepared according to the general synthesis shown in Scheme A15:

General Synthesis of 5,6 Substituted 4-alkoxy-2-pyridin-4-yl-thieno[2,3-d]pyrimidine Derivatives of General Formula [F-32] (Scheme A16)

4-chloro-2-pyridin-4-yl-5,6,7,8-tetrahydro-benzo[4,5]thieno[2,3-d]pyrimidine [AA-24] was subjected to a nucleophilic substitution reaction with an amino alcohol or N-Boc protected amino alcohol of general formula [F-33] in the presence of a strong base such as NaH, KH or LDA in the presence of an anhydrous polar aprotic solvent such as DMA, DMF or NNP. After reaction work up, typically by a liquid-liquid extraction or purification by acidic ion exchange catch-release, the N-Boc derivative was deprotected under acidic conditions with a strong acid such as TFA, TCA, methanesulfonic acid, HCl or H 2 SO 4 in a solvent such as DCM, DCE, THF, EtOH or MeOH and the crude reaction product was purified by reverse phase preparative HPLC.

Synthesis of dimethyl-[2-(2-pyridin-4-yl-5,6,7,8-tetrahydro-benzo[4,5]thieno[2,3-d]pyrimidin-4-yloxy)-ethyl]-amine [135]

To a mixture of 4-chloro-2-pyridin-4-yl-5,6,7,8-tetrahydro-benzo[4,5]thieno[2,3-d]pyrimidine [AA-24] (80 mg, 0.280 mmol) and 2-dimethylaminoethanol (34 al, 0.340 mmol) in DMA (1 ml) was added NaH (13 mg, 0.560 mmol). The reaction mixture was allowed to stir at room temperature for 2 hours and after completion the mixture was diluted with water and the product was extracted into DCM (2×2 ml). The combined organic phases were dried with magnesium sulfate, filtered and evaporated under reduced pressure and the crude product was purified by preparative HPLC (method A) to yield to the title compound. LCMS method: 2, RT: 2.20 min, MI: 355 [M+1]. 1H NMR (300 MHz, DMSO): 8.70 (d, 2H), 8.22 (d, 2H), 3.1 (m, 2H), 2.9 (m, 2H), 2.75 (m, 2H), 2.65 (m, 2H), 2.34 (s, 6H), 1.83 (m, 4H).

Synthesis of methyl-[2-(2-pyridin-4-yl-5,6,7,8-tetrahydro-benzo[4,5]thieno[2,3-d]pyrimidin-4-yloxy)-ethyl]-amine [136]

To a mixture of 4-chloro-2-pyridin-4-yl-5,6,7,8-tetrahydro-benzo[4,5]thieno[2,3-d]pyrimidine [AA-24] (80 mg, 0.280 mmol) and tert-butyl-N-2-hydroxyethylcarbamate (53 μl, 0.340 mmol) in DMA (1 ml) was added NaH (13 mg, 0.560 mmol). The reaction mixture was allowed to stir at room temperature for 2 hours and after completion the mixture was diluted with water and the product was extracted into DCM (2×2 ml). The combined organic phases were dried with magnesium sulfate, filtered and evaporated under vacuum. To a solution of the crude product in DCM (1 ml) was added TFA (1 ml) and the mixture was stirred at room temperature for 1 hour. After completion the mixture was loaded onto a SCX-2 cartridge and washed with methanol. The product was released from the cartridge using a solution of 2M ammonia/methanol. The ammonia/methanol eluent was concentrated under reduced pressure and the product was purified by preparative HPLC (method A) to yield to the title compound. LCMS method: 2, RT: 2.16 min, MI: 327 [M+1]. 1H NMR (300 MHz, DMSO): 8.70 (d, 2H), 8.3 (d, 2H), 2.96 (m, 2H), 2.8 (m, 2H), 2.56 m, 2H), 2.45 (m, 2H), 1.81 (m, 4H).

The following compounds were prepared according to the general synthesis shown in Scheme A16:

General Synthesis of 5,6 Substituted 4-alkoxy-2-pyridin-4-yl-thieno[2,3-d]pyrimidines [F-32] (Scheme A17)

2,4,6-triisopropyl-benzenesulfonic acid 2-pyridin-4-yl-5,6,7,8-tetrahydro-benzo[4,5]thieno[2,3-d]pyrimidin-4-yl ester [AA-25] was subjected to a nucleophilic substitution reaction with a N-Boc protected amino alcohol of general formula F-33] in the presence of a strong base such as NaH, KH or LDA in the presence of an anhydrous polar aprotic solvent such as DMA, DMF or NNP. After reaction work up, typically by a liquid-liquid extraction or purification by acidic ion exchange catch-release, the N-Boc derivative was deprotected under acidic conditions with a strong acid such as TFA, TCA, methanesulfonic acid, HCl or H 2 SO 4 in a solvent such as DCM, DCE, THF, EtOH or and the crude reaction product was purified by reverse phase preparative HPLC.

Synthesis of (S)-1-cyclohexyl-2-(2-pyridin-4-yl-5,6,7,8-tetrahydro-benzo[4,5]thieno[2,3-d]pyrimidin-4-yloxy)-ethylamine [156]

To a mixture of 2,4,6-triisopropyl-benzenesulfonic acid 2-pyridin-4-yl-5,6,7,8-tetrahydro-benzo[4,5]thieno[2,3-d]pyrimidin-4-yl ester [AA-25] (100 mg, 0.185 mmol) and N-Boc-L-cyclohexylglycinol (67 mg, 0.278 mmol) in DMA (1 ml) was added NaH (13 mg, 0.560 mmol). The reaction mixture was allowed to stir at room temperature for 2 hours and after completion the mixture was diluted with water and the product was extracted into DCM (2×2 ml). The combined organic phases were dried with magnesium sulfate, filtered and evaporated under reduced pressure. The crude product was dissolved in DCM (1 ml) and TFA (1 ml) was added and the mixture was stirred at room temperature for 1 hour. After completion the mixture was loaded onto a SCX-2 cartridge and washed with methanol. The product was released from the cartridge using a solution of 2M ammonia/methanol. The ammonia/methanol eluent was concentrated under reduced pressure and the product was purified by preparative HPLC (method A) to yield to the title compound. LCMS method: 2, RT: 2.62 min, MI: 409 [M+1]. 1H NMR (300 MHz, DMSO): 8.7 (d, 2H), 8.3 (d, 2H), 4.7 (m, 2H), 4.5 (m, 2H), 3 (m, 2H), 2.9 (m, 2H), 1.81 (m, 4H), 1.7 (m, 3H), 1.6 (m, 3H), 1.2 (m, 4H).

›NMR · 13 of 14

The following compounds were prepared according to the general synthesis shown in Scheme A17:

General Synthesis of 5,6 Substituted 4-alkoxy-2-pyridin-4-yl-thieno[2,3-d]pyrimidine Derivatives of General Formula [F-32] (Scheme A18)

Compounds were synthesised starting from an N-Boc protected amino acid of general formula [F-34] which was converted to a primary alcohol derivative of general formula [F-35] by reduction with a borane reducing agent such as BH 3 . THF or BH 3 . SMe 2 in an anhydrous solvent such as THF, dioxane or diethylether. The resultant aminoalcohol derivative [F-35] was then reacted with a 5,6-substituted-(2,4,6-triisopropyl-benzenesulfonic acid)-2-pyridin-4-yl-thieno[2,3-d]pyrimidin-4-yl ester [AA-25] [prepared in scheme A5] in the presence of a strong base such as NaH, KH or LDA in the presence of an anhydrous polar aprotic solvent such as DMA, DMF or NNP. After reaction work up, typically by a liquid-liquid extraction or purification by acidic ion exchange catch-release, the N-Boc derivative was deprotected under acidic conditions with a strong acid such as TFA, TCA, methanesulfonic acid, HCl or H 2 SO 4 in a solvent such as DCM, DCE, THF, EtOH or MeOH the crude reaction product was purified by reverse phase preparative HPLC.

Synthesis of [(S)-2-hydroxy-1-(4-methoxy-benzyl)-ethyl]-carbamic acid tert-butyl ester [AA-54]

A 1M solution of BH 3 in THF (1.7 ml, 1.7 mmol) was added dropwise to a stirred solution of (S)-2-tert-butoxycarbonylamino-3-(4-methoxy-phenyl)-propionic acid (200 mg, 0.678 mmol) in dry THF (2.5 ml) at 0° C. The mixture was stirred for 2 hours at 0° C. then hydrolysed by slow addition of excess of 10% acetic acid/MeOH (5 ml) and stirred at room temperature for a further 2 hours. The solvent was removed under reduced pressure the residue was dissolved in ethylacetate (5 ml) and washed with saturated sodium bicarbonate (2×5 ml) and brine (2×5 ml). The combined organic phases were dried with magnesium sulfate, filtered and evaporated under reduced pressure to provide the title compound as a white solid which was used without further purification in the next step. LCMS method: 1, RT: 2.82 min, MI: 441 [M+1].

Synthesis of (S)-1-(4-methoxy-benzyl)-2-(2-pyridin-4-yl-5,6,7,8-tetrahydro-benzo [4,5]thieno[2,3-d]pyrimidin-4-yloxy)-ethylamine [159]

To a solution of 2,4,6-triisopropyl-benzenesulfonic acid 2-pyridin-4-yl-5,6,7,8-tetrahydro-benzo[4,5]thieno[2,3-d]pyrimidin-4-yl ester [AA-25] (50 mg, 0.091 mmol) in DMA (1 ml) was added [(S)-2-amino-1-(4-methyl-benzyl)-ethyl]-carbamic acid tert-butyl ester [AA-54] (31 mg, 0.110 mmol) followed by NaH (4 mg, 0.110 mmol), the mixture was stirred at room temperature for 2 hours. After completion the product was extracted with DCM (2 ml) and washed with brine (3 ml). To the organic phase was added TFA (2 ml) and the mixture was stirred at room temperature for 1 hour. After completion the mixture was loaded onto a SCX-2 cartridge and washed with methanol. The product was released from the cartridge using a solution of 2M ammonia/methanol. The ammonia/methanol eluent was concentrated under reduced pressure and the crude product was purified by preparative HPLC (method A) to yield to the title compound. LCMS method: 2, RT: 2.61 min, MI: 447 [M+1]. 1H NMR (300 MHz, DMSO): 8.7 (d, 2H), 8.1 (d, 2H), 7.2 (d, 2H), 6.9 (d, 2H), 4.7 (m, 1H), 4.5 (m, 1H), 3.8 (s, 3H), 3.6 (m, 2H), 2.9 (m, 1H), 2.8 (m, 2H), 2.7 (m, 2H),1.81 (m, 4H).

The following compounds were prepared according to the general synthesis shown in Scheme A18:

General Synthesis of Substituted 4-amino-2-pyrazolyl-4-yl-thieno[2,3-d]pyrimidine Derivatives of General Formula [F-35] (Scheme A19)

A 2,4-dichloro-5,6,7,8-tetrahydro-enzo[4,5]thieno[2,3-d]pyrimidine of general formula [F-21] was reacted with primary and secondary amino derivative of general formula [F-13] in a polar aprotic solvent such as DMA, DMF, NMP in the presence of a tertiary amine base such as Et 3 N, DIPEA or NMM at ambient temperature. Following reaction work up, typically by a liquid-liquid extraction or purification by acidic ion exchange catch-release, the amino derivative of general formula [F-23] were reacted with pyrazolyl boronic acids or boronate esters of general formula [F-36] in the presence of a palladium catalyst such as Pd(PPh 3 ) 4 or Pd(PPh 3 ) 2 Cl 2 a base such as Et 3 N, KOH, Na 2 CO 3 or NaOH in a polar solvent such as EtOH, THF, DMA or dioxane at high temperature either by heating thermally or using a microwave reactor. After reaction work up, typically by a liquid-liquid extraction or purification by acidic ion exchange catch-release, the N-Boc derivative was deprotected under acidic conditions with a strong acid such as TFA, TCA, methanesulfonic acid, HCl or H 2 SO 4 in a solvent such as DCM, DCE, THF, EtOH or MeOH the crude reaction product was purified by reverse phase preparative HPLC.

Synthesis of [2-(2-chloro-5,6,7,8-tetrahydro-benzo[4,5]thieno[2,3-d]pyrimidin-4-ylamino)-ethyl]-carbamic acid tert-butyl ester [AA-49]

To a solution of 2,4-dichloro-5,6,7,8-tetrahydro-benzo[4,5]thieno[2,3-d]pyrimidine [AA-48] (100 mg, 0.387 mmol) in DMA (5 ml) was added Boc-ethylenediamine (62 mg, 0.387 mmol) followed by Et 3 N (110 al, 0.774 mmol), the mixture was stirred at room temperature for 2 hours. Then the product was extracted with DCM (2×10 ml) and washed with brine (2×10 ml). The combined organic phases were dried with magnesium sulfate, filtered and evaporated under reduced pressure to provide a brown solid. The residue was used without further purification in the next step. LCMS method: 1, RT: 6.26 min, MI: 383 [M+1].

Synthesis of N*1*-[2-(1H-Pyrazol-4-yl)-5,6,7,8-tetrahydro-benzo[4,5]thieno[2,3-d]pyrimidin-4-yl]-ethane-1,2-diamine [181]

A microwave vial was charged with [2-(2-chloro-5,6,7,8-tetrahydro-benzo[4,5]thieno[2,3-d]pyrimidin-4-ylamino)-ethyl]-carbamic acid tert-butyl ester [AA-49](40 mg, 0.17 mmol), 1H-pyrazole-4-boronic acid (23 mg, 0.20 mmol), tetrakis (triphenyl phosphine) palladium (10 mg, 0.008 mmol), Na 2 CO 3 (2M in water, 180 μl, 0.6 mmol) and EtOH (1 ml). The reaction was heated to 150° C. for 15 minutes under microwave irradiation. The mixture was then filtered through a plug of silica, washed with methanol and the filtrate was concentrated under reduced pressure. To a solution of the crude product in DCM (2 ml) was added TFA (2 ml) and the mixture was stirred at room temperature for 1 hour. After completion the mixture was loaded onto a SCX-2 cartridge and washed with methanol. The product was released from the cartridge using a solution of 2M ammonia/methanol. The ammonia/methanol eluent was concentrated under reduced pressure and the crude product was purified by preparative HPLC (method A) to yield to the title compound. LCMS method: 2, RT: 2.20 min, MI: 315 [M+1], 1 H NMR (300 MHz, DMSO): 8.41 (s, 1H), 8.20 (s, 2H), 6.80 (t, 1H), 3.74 (m, 2H), 3.06 (m, 2H), 2,94 (m, 2H), 2,74 (s, 2H), 2,53 (s, 2H), 1.81 (s, 4H).

›NMR · 14 of 14

The following compounds were prepared according to the general synthesis shown in Scheme A19:

4PT32P Compounds

In one approach, compounds of formula [G-100] (where A=NH or N alkyl) are prepared by reacting a compound of formula [G-102] (where X is a halogen such as chlorine or a sulfonate) with a compound of formula [G-103] (where A is NH or NH 2 and Z on the terminal nitrogen is H, alkyl or a suitable nitrogen protecting group, such as Boc, Alloc, Cbz or Fmoc) in a suitable solvent such as DMF in the presence of a suitable base such as triethylamine.

The reaction is suitably conducted at an elevated temperature for example 40° C. Where Z is a suitable nitrogen protecting group, such as Boc, Alloc, Cbz or Fmoc, compounds of formula [G-100] are prepared by a suitable deprotection reaction. For example: where Z is a Boc protecting group reaction with an acid such as TFA in a suitable solvent such as DCM. The reaction is suitably conducted at ambient temperature. In one approach, compounds of formula [G-100](where A=O) are prepared by reacting a compound of formula [G-102] (where X is a halogen such as chlorine or sulfonate) with a compound of formula [G-103] (where A is OH and Z on the terminal nitrogen is H, alkyl or a suitable nitrogen protecting group, such as Boc, Alloc, Cbz or Fmoc) in a suitable solvent such as DMA in the presence of a suitable base such as sodium hydride. The reaction is suitably conducted at ambient temperature. Where Z is a suitable nitrogen protecting group, such as Boc, Alloc, Cbz or Fmoc, compounds of formula [G-100] are prepared by a suitable deprotection reaction. For example: where Z is a Boc protecting group reaction with an acid such as TFA in a suitable solvent such as DCM. The reaction is suitably conducted at ambient temperature.

In one approach, compounds of formula [G-102] (where X is a halogen such as chlorine) are prepared by reacting a compound of formula [G-104] with a suitable halogenating agent such as phosphorous oxychloride. The reaction is suitably conducted at elevated temperature such as 125° C. Compounds of formula [G-102] (where X is a sulfonate) are prepared by reacting a compound of formula [G-104] with a suitably substituted sulfonyl chloride in a suitable solvent such as DMA in the presence of a suitable base such as triethylamine and a catalytic amount of DMAP. The reaction is suitably conducted at ambient temperature.

In one approach, compounds of formula [G-104] are prepared by reacting a compound of formula [G-105] (where R x1 is an alkyl group such as methyl or ethyl) with a compound of formula [G-106] in a suitable solvent such as dioxane with a suitable base such as potassium-tert-pentylate. The reaction is suitably conducted at ambient temperature.

In another approach compounds of formula [G-104] are prepared by reacting a compound of [G-107] with a compound of formula [G-108] in a suitable solvent such as methanol with a suitable protic acid such as hydrogen chloride. The reaction is suitably conducted at elevated temperature. Full aromatisation to yield compounds of formula [G-104] is achieved by reaction with an oxidising agent such as 2,3-dichloro-5,6-dicyanobenzoquinone in a suitable solvent such as dichloromethane. The reaction is suitably conducted at ambient temperature.

In one approach, compounds of formula [G-103] (where A is OH) are prepared by reacting a compound of formula [G-109] (where Z on the terminal nitrogen is H, alkyl or a suitable nitrogen protecting group, such as Boc, Alloc, Cbz or Fmoc) with a reducing agent such as borane-THF complex in a suitable solvent such as THF. The reaction is suitably conducted at low temperature for example 0° C. In one approach, compounds of formula [G-103] (where A is NH 2 ) are prepared by reacting a compound of formula [G-110] (where Z on the terminal nitrogen is H, alkyl or a suitable nitrogen protecting group, such as Boc, Alloc, Cbz or Fmoc) with a reducing agent such as borane-THF complex in a suitable solvent such as THF. The reaction is suitably conducted at low temperature for example 0° C. In one approach, compounds of formula [G-110] are prepared by reacting compounds of formula [G-109] with Boc anhydride in the presence of a suitable base such as pyridine, ammonium carbonate in a suitable solvent such as dioxane. The reaction is suitably conducted at ambient temperature.

An example of a method as described above is illustrated in the following scheme.

General Synthesis of 6, 7-Substituted 2-pyridin-4-yl-thieno[3,2-d]pyrimidin-4-ol, of General Formula [G-104] (Scheme B1)

A 4,5-substituted-3-Amino-thiophene-2-carboxylic acid alkyl ester derivative, of general formula [G-105] (where Rx=alkyl such as methyl or ethyl) was subjected to a cyclisation reaction with a 4-cyanopyridine derivative of general formula [G-106] in

›Tables in the description — 23
Amine method: 2, RT: 2.10 min, MI: 338 [M + 1]
ExSM[F-13]Characterisation
2[AA-24]
method: 2, RT: 2.05 min, MI: 340[M + 1]
3[AA-24]
method: 2, RT: 2.13 min, MI: 352 [M + 1]
4[AA-24]
method: 2, RT: 2.15 min, MI: 380 [M + 1]1H NMR (300 MHz, DMSO): 8.70 (d, 2H) 8.20 (d, 2H), 4 (m, 2H), 3.8 (m, 2H), 3.2 (m, 2H), 3 (m, 2H), 2.9 (m, 4H), 2.1 (m, 2H), 1.9 (m, 2H),
1.7 (m, 2H), 0.8 (s, 3H)
5[AA-24]
method: 2, RT: 2.10 min, MI: 340 [M + 1]
6[AA-24]
method: 2, RT: 2.33 min, MI: 400 [M + 1]
7[AA-24]
method: 2, RT: 2.46 min, MI: 455 [M + 1]
8[AA-24]
method: 2, RT: 2.20 min, MI: 366 [M + 1]
9[AA-24]
method: 2, RT: 2.23 min, MI: 380 [M + 1]
10[AA-24]
method: 2, RT: 2.30 min, MI: 380 [M + 1]1H NMR (300 MHz, DMSO): 8.8 (d, 2H), 8.2 (d, 2H), 3.4 (m, 2H), 3.2 (m, 2H), 3.1 (m, 2H), 2.90 (m, 2H), 2.68 (m, 2H), 1.9 (m, 4H), 1.13 (d, 6H)
11[AA-24]
Amine method: 2, RT: 2.13 min, MI: 364 [M + 1]
ExSM[F-13]Characterisation
13[AA-5]
method: 2, RT: 2.05 min, MI 340 [M + 1]1H NMR (300 MHz, DMSO): 8.7 (d, 2H), 8.2 (d, 2H), 3.9 (m, 2H), 3.1 (m, 2H), 3 (m,
2H), 2.8 (m, 2H), 2.45 (s,
3H), 1.8 (m, 4H)
14[AA-5]
method: 2, RT: 2.10 min, MI: 366 [M + 1]
15[AA-5]
method: 2, RT: 2.17 min, MI: 340 [M + 1]
16[AA-5]
method: 2, RT: 2.35 min, MI: 382 [M + 1]
17[AA-5]
method: 2, RT: 2.18 min, MI: 354 [M + 1]
18[AA-5]
method: 3, RT: 1.81 min, MI: 328 [M + 1]
ExSMAmineCharacterisation
20[AA-25]
method: 4, RT: 4.14 min, MI: 352 [M + 1]
21[AA-26]
method: 2, RT: 2.32 min, MI: 340 [M + 1]
22[AA-26]
method: 2, RT: 2.73 min, MI: 354 [M + 1]
23[AA-26]
method: 2, RT: 2.66 min, MI: 354 [M + 1]
24[AA-27]
method: 2, RT: 2.36 min, MI: 354 [M + 1]
25[AA-27]
method: 2, RT: 2.68 min, MI: 368 [M + 1]
26[AA-27]
method: 2, RT: 2.57 min, MI: 368 [M + 1]
27[AA-33]
method: 3, RT: 2.16 min, MI: 431 [M + 1]
28[AA-34]
method: 2, RT: 2.37 min, MI: 328 [M + 1]
29[AA-34]
method: 2, RT: 2.41 min, MI: 342 [M + 1]
30[AA-34]
method: 2, RT: 2.51 min, MI: 342 [M + 1]
31[AA-35]
method: 2, RT: 2.30 min, MI: 328 [M + 1]
32[AA-35]
method: 2, RT: 2.32 min, MI: 328 [M + 1]
33[AA-36]
method: 2, RT: 2.01 min, MI: 300 [M + 1]
34[AA-36]
method: 2, RT: 2.12 min, MI: 314 [M + 1]
35[AA-36]
method: 2, RT: 2.12 min, MI: 314 [M + 1]
36[AA-37]
method: 2, RT: 1.92 min, MI: 300 [M + 1]
37[AA-37]
method: 2, RT: 2.08 min, MI: 314 [M + 1]
38[AA-37]
method: 2, RT: 2.52 min, MI: 314 [M + 1]
39[AA-38]
method: 2, RT: 1.60 min, MI: 329 [M + 1]
40[AA-39]
method: 2, RT: 2.07 min, MI: 314 [M + 1]
41[AA-39]
method: 2, RT: 2.16 min, MI: 328 [M + 1]
42[AA-29]
method: 3, RT: 1.48 min, MI: 384 [M + 1]1H NMR (300 MHz, DMSO): 8.7 (d, 2H), 8.42 (s, HCOOH, 1H), 8.26 (d, 2H), 3.94 (bs,
2H), 3.86 (bm, 4H), 3.86
(bm, 2H), 3.30 (m, 2H),
3.22 (m, 4H)
43[AA-30]
method: 3, RT: 2.33 min, MI: 354 [M + 1]
44[AA-32]
method: 3, RT: 2.07 min, MI: 344 [M + 1]
45[AA-31]
Characteri- method: 3, RT: 4.55 min, MI: 464 [M + 1]
ExSMAmino acid [F-14]sation
47[AA-25]
method: 3, RT: 2.47 min, MI: 446 [M + 1]
48[AA-25]
method: 3, RT: 2.64 min, MI: 430 [M + 1]
49[AA-25]
method: 3, RT: 2.66 min, MI: 446 [M + 1]
50[AA-25]
method: 3, RT: 2.76 min, MI: 434 [M + 1]
51[AA-25]
method: 3, RT: 2.56 min, MI: 434 [M + 1]
52[AA-25]
method: 3, RT: 2.87 min, MI: 466 [M + 1]
53[AA-25]
method: 3, RT: 2.65 min, MI: 430 [M + 1]
54[AA-25]
method: 3, RT: 2.53 min, MI: 446 [M + 1]
55[AA-25]
method: 3, RT: 2.23 min, MI: 432 [M + 1]
56[AA-25]
method: 3, RT: 1.87 min, MI: 417 [M + 1]
57[AA-25]
method: 3, RT: 1.98 min, MI: 417 [M + 1]
58[AA-25]
method: 3, RT: 2.18 min, MI: 417 [M + 1]
59[AA-25]
method: 3, RT: 2.26 min, MI: 423 [M + 1]
60[AA-25]
method: 3, RT: 2.44 min, MI: 396 [M + 1]
61[AA-25]
method: 3, RT: 2.59 min, MI: 472 [M + 1]
62[AA-25]
method: 3, RT: 2.21 min, MI: 380 [M + 1]
63[AA-25]
method: 3, RT: 4.60 min, MI: 455 [M + 1]
64[AA-32]
ExampleSMCharacterisation
66[54]method: 3,
RT: 2.34 min, MI: 432 [M + 1]
method: 3, RT: 2.27 min, MI: 418 [M + 1]
SMCarboxamide
Ex[F-12][F-19]Characterisation
68[AA-25]
method: 2, RT: 2.16 min, MI: 354 [M + 1]1H NMR (300 MHz, DMSO): 8.7 (d, 2H), 8.2 (d, 2H), 3.9 (m, 1H), 3.6 (m, 1H), 3.3 (m, 1H), 1.8 (m, 4H), 1.6 (m, 2H), 1 (t, 3H)
69[AA-26]
method: 2, RT: 2.94 min, MI: 430 [M + 1]
70[AA-28]
method: 2, RT: 2.72 min, MI: 430 [M + 1]
71[AA-25]
method: 3, RT: 2.54 min, MI: 416 [M + 1]1H NMR (300 MHz, DMSO): 8.67 (d, 2H), 7.9 (d, 2H), 7.3 (m, 5H), 3.9 (m, 2H), 3.53 (m, 2H), 2.92 (m, 1H), 2.91 (m, 2H), 2.79 (m, 2H), 1.83 (m, 4H)
72[AA-33]
method: 3, RT: 2.52 min, MI: 521 [M + 1]
73[AA-33]
method: 3, RT: 2.53 min, MI: 521 [M + 1]
74[AA-38]
method: 2, RT: 2.31 min, MI: 419 [M + 1]
75[AA-39]
method: 2, RT: 2.56 min, MI: 404 [M + 1]
76[AA-27]
method: 2, RT: 2.95 min, MI: 444 [M + 1]
77[AA-30]
method: 3, RT: 2.77 min, MI: 444 [M + 1]
78[AA-29]
method: 3, RT: 2.37 min, MI: 474 [M + 1]
79[AA-29]
method: 3, RT: 2.37 min, MI: 474 [M + 1]
80[AA-32]
method: 3, RT: 2.59 min, MI: 434 [M + 1]
81[AA-32]
method: 3, RT: 2.60 min, MI: 434 [M + 1]
82[AA-31]
method: 3, RT: 2.23 min, MI: 418 [M + 1]
83[AA-31]
Amine method: 2, RT: 2.32 min, MI: 441 [M + 1]
ExSM[F-13]Characterisation
85[AA-8]
method: 2, RT: 2.26 min, MI: 366 [M + 1]1H NMR (300 MHz, DMSO): 8.72 (d, 2H), 8.25 (d, 2H), 3.62 (m, 2H), 3.44 (m, 4H), 3.06 (m, 2H), 3.03 (m, 4H), 1.88 (m, 2H), 1.64 (m, 4H)
86[AA-8]
method: 2, RT: 2.27 min, MI: 380 [M + 1]
87[AA-8]
method: 2, RT: 2.77 min, MI: 430 [M + 1]
88[AA-8]
method: 2, RT: 2.25 min, MI: 354 [M + 1]
89[AA-8]
method: 2, RT: 2.26 min, MI: 354 [M + 1]1H NMR (300 MHz, DMSO): 8.71 (d, 2H), 8.26 (d, 2H), 3.83 (m, 1H), 3.73 (m, 1H), 3.62 (m, 1H), 3.09 (m, 2H), 2.98 (m, 2H), 1.89 (m, 2H), 1.66 (m, 4H), 1.21 (d, 3H)
90[AA-11]
method: 2, RT: 2.63 min, MI: 517 [M + 1]
91[AA-22]
method: 2, RT: 2.41 min, MI: 362 [M + 1]
92[AA-22]
method: 2, RT: 2.41 min, MI: 402 [M + 1]
93[AA-23]
method: 2, RT: 2.48 min, MI: 467 [M + 1]
94[AA-15]
method: 2, RT: 1.90 min, MI: 312 [M + 1]
95[AA-15]
method: 2, RT: 1.91 min, MI: 326 [M + 1]
96[AA-11]
method: 4, RT: 4.22 min, MI: 446 [M + 1]
Boronic acidAmine
ExSM[F24][F-13]Characterisation
98[AA-49]
method: 2, RT: 2.64 min, MI: 344 [M + 1]
99[AA-49]
method: 2, RT: 2.56 min, MI: 358 [M + 1]1H NMR (300 MHz, DMSO): 8.677 (d, 1H), 8.26 (d, 1H), 8.34 (s, 1H), 3.83 (m, 1H), 3.75 (m, 1H), 3.62 (m, 1H), 2.91 (m, 2H), 2.79 (m, 2H), 1.66 (m, 4H),
1.21 (d, 3H)
100[AA-49]
method: 2, RT: 2.52 min, MI: 358 [M + 1]
101[AA-49]
method: 2, RT: 2.79 min, MI: 434 [M + 1]1H NMR (300 MHz, DMSO): 8.64 (d, 1H), 8.53 (d, 1H), 7.83 (m, 1H), 7.26 (m, 5H), 3.92 (m, 2H), 3.46 (m, 2H), 2.92 (m, 1H), 2.91 (m, 2H), 2.79 (m, 2H), 1.83 (m, 4H)
102[AA-49]
Acid chloride method 2, RT: 1.66 min, MI: 412 [M + 1]
ExSM[F-27]Characterisation
105[AA-52]
method 2,, RT: 1.83 min, MI: 369 [M + 1]
106[AA-52]
method 2, RT: 1.97 min, MI: 383 [M + 1]
107[AA-52]
method 2, RT: 2.02 min, MI: 397 [M + 1]
108[AA-52]
method 2, RT: 2.01 min, MI: 395 [M + 1]
109[AA-52]
method 2, RT: 2.13 min, MI: 409 [M + 1]
110[AA-52]
method 2, RT: 2.32 min, MI: 411 [M + 1]
111[AA-52]
Aldehyde method 2, RT: 1.61 min, MI: 383 [M + 1]
ExSM[F-30]Characterisation
113[AA-50]
method 2, RT: 1.96 min, MI: 341 [M + 1]
114[AA-50]
Aldehyde method 2, RT: 2.32 min, MI: 408 [M + 1]
ExSM[F-30]Characterisation
116[3]
method 2, RT: 2.56 min, MI: 442 [M + 1]
117[3]
method 2, RT: 2.77 min, MI: 520 [M + 1]
118[3]
method 2, RT: 2.3 min, MI: 443 [M + 1]
119[3]
method 2, RT: 2.22 min, MI: 380 M + 1]
120
method 2, RT: 2.32 min, MI: 443 [M + 1]
121[3]
method 2, RT: 2.97 min, MI: 510 [M + 1]1H NMR (300 MHz. DMSO): 8.72 (d, 2H), 8.24 (d, 2H), 8.17 (s, 1H), 7.73 (d, 2H), 7.58 (d, 2H), 3.66 (s, 2H), 3.51 (m, 4H), 2.9 (m, 4H), 2.61 (m, 2H), 2.53 (m, 2H), 1.87 (m, 2H), 1.74 (m, 2H)
122[3]
method 2, RT: 2.72 min, MI: 476 [M + 1]
123[3]
method 2, RT: 2.78 min, MI: 476 [M + 1]
124[3]
method 2, RT: 2.76 min, MI: 476 [M + 1]1H NMR (300 MHz, DMSO): 8.68 (d, 2H), 8.22 (d, 2H), 8.16 (s, 1H), 7.34 (m, 4H), 3.45 (s, 2H), 3.48 (m, 4H), 2.87 (m, 4H), 2.57 (m, 2H), 2.53 (m, 2H), 1.87 (m, 2H), 1.73 (m, 2H)
125[3]
method 2, RT: 2.19 min, MI: 366 [M + 1]1H NMR (300 MHz, DMSO): 8.68 (d, 2H), 8.22 (d, 2H), 3.48 (m, 4H), 2.87 (m, 4H), 2.57 (m, 2H), 2.53 (m, 2H), 2.28 (s, 3H), 1.87 (d, 2H), 1.72
(d, 2H)
126[3]
method 2, RT: 2.41 min, MI: 458 [M + 1]
127[3]
method 2, RT: 2.83 min, MI: 520 [M + 1]
128[3]
method 2, RT: 2.57 min, MI: 520 [M + 1]
129[3]
method 2, RT: 2.32 min, MI: 408 [M + 1]
130[3]
method 2, RT: 2.23 min, MI: 443 [M + 1]1H NMR (300 MHz, DMSO): 8.69 (d, 2H), 8.53 (s, 1H), 8.48 (m, 1H), 8.23 (d, 2H), 7.75 (m, 1H), 7.35 (m, 1H), 3.58 (m, 2H), 3.48 (m, 4H), 2.88 (m, 4H), 2.59 (m, 2H), 2.53 (m, 4H), 1.87 (m, 2H), 1.73 (m, 2H)
131[3]
method 2, RT: 3.28 min, MI: 520 [M + 1]
132[3]
method 2, RT: 2.57 min, MI: 456 [M + 1]
133[3]
method 2, RT: 2.30 min, MI: 394 [M + 1]
134[3]
Alcohol method 2, RT: 2.49 min, MI: 403 [M + 1]
ExSM[F-33]Characterisation
137[AA-24]
method 2, RT: 2.83 min, MI: 341 [M + 1]
138[AA-24]
method 2, RT: 2.45 min, MI: 383 [M + 1]
139[AA-24]
method 2, RT: 2.20 min, MI: 353 [M + 1]
140[AA-24]
method 2, RT: 2.20 min, MI: 353 [M + 1]
141[AA-24]
method 2, RT: 2.29 min, MI: 367 [M + 1]
142[AA-24]
method 2, RT: 2.60 min, MI: 417 [M + 1]
143[AA-24]
method 2, RT: 2.56 min, MI: 417 [M + 1]
144[AA-24]
method 2, RT: 2.22 min, MI: 341 [M + 1]
145[AA-24]
method 2, RT: 2.88 min, MI: 341 [M + 1]
146[AA-24]
method 2, RT: 2.52 min, MI: 383 [M + 1]
147[AA-24]
method 2, RT: 3.47 min, MI: 403 [M + 1]
148[AA-24]
method 2, RT: 2.37 min, MI: 369 [M + 1]
149[AA-24]
method 2, RT: 2.31 min, MI: 355 [M + 1]
150[AA-24]
method 2, RT: 2.32 min, MI: 355 [M + 1]
151[AA-24]
method 2, RT: 2.40 min, MI: 369 [M + 1]
152[AA-24]
method 2, RT: 2.21 min, MI: 339 [M + 1]
153[AA-24]
method 2, RT: 2.27 min, MI: 367 [M + 1]
154[AA-24]
method 2, RT: 2.27 min, MI: 367 [M + 1]
155[AA-24]
Alcohol method 2, RT: 2.82 min, MI: 456 [M + 1]
ExSM[F-33]Characterisation
157[AA-25]
method 2, RT: 2.82 min, MI: 423 [M + 1]1H NMR (300 MHz, DMSO): 8.7 (d, 2H), 8.3 (d, 2H), 4.7 (m, 2H), 4.5 (m, 2H), 3.2 (m, 2H), 2.8 (m, 2H), 1.81 (m, 4H), 1.7 (m, 4H), 1.6 (m, 2H), 1.4 (m, 2H), 1.2 (m, 2H), 0.9 (m, 2H)
158[AA-25]
method 7, RT: 3.76 min, MI: 431 [M + 1]
Boronic acidAmine
ExSM[F36][F-13]Characterisation
182[AA-48]
method 2, RT: 2.32 min, MI: 343 [M + 1]1H NMR (300 MHz, DMSO): 8.37 (s, 1H), 6.87 (t, 1H), 3.73 (m, 2H), 3.15 (m, 2H), 3.03 (m, 2H), 2.97 (s, 2H), 2.74 (s, 2H), 2.49 (s, 6H), 1.84 (s, 4H)
183[AA-48]
method 2, RT: 2.52 min, MI: 405 [M + 1]
184[AA-48]
method 2, RT: 2.65 min, MI: 433 [M + 1]
185[AA-48]
method 2, RT: 2.30 min, MI: 341 [M + 1]1H NMR (300 MHz, DMSO): 8.20 (s, 2H), 3.51 (m, 4H), 3.19 (m, 4H), 2.88 (m, 4H), 1.87 (m, 2H), 1.78 (m, 2H)
186[AA-48]
method 2, RT: 2.31 min, MI: 355 [M + 1]1H NMR (300 MHz, DMSO): 8.17 (s, 2H), 3.87 (m, 2H), 3.74 (m, 2H), 3.38 (m, 2H), 3.11 (m, 2H), 2.84 (m, 2H), 1.88 (m, 2H), 1.77 (m, 2H)
187[AA-48]
method 2, RT: 2.21 min, MI: 329 [M + 1]
188[AA-48]
method 2, RT: 2.26 min, MI: 329 [M + 1]
189[AA-48]
method 2, RT: 2.27 min, MI: 341 [M + 1]
190[AA-48]
method 2, RT: 2.49 min, MI: 369 [M + 1]1H NMR (300 MHz, DMSO): 8.97 (s, 1H), 3.51 (m, 6H), 2.84 (m, 6H), 1.88 (m, 2H), 1.77 (m, 2H)
191[AA-48]
method 2, RT: 2.48 min, MI: 383 [M + 1]
192[AA-49]
method 2, RT: 2.38 min, MI: 357 [M + 1]
193[AA-48]
method 2, RT: 2.37 min, MI: 357 [M + 1]
194[AA-48]
method 2, RT: 2.41 min, MI: 369 [M + 1]
195[AA-48]
method 2, RT: 2.27 min, MI: 329 [M + 1]
196[AA-48]
Amine
ExSM[G-117]Characterisation
357BB-07
method: 2, RT: 2.67 min, MI: 430 [M + 1]
358BB-07
method: 2, RT: 2.73 min, MI: 418 [M + 1]
359BB-07
method: 2, RT: 2.67 min, MI: 418 [M + 1]
360BB-07
method: 2, RT: 2.65 min, MI: 404 [M + 1]
361BB-05
method: 2, RT: 1.81 min, MI: 300 [M + 1]
362BB-05
method: 2, RT: 1.88 min, MI: 326 [M + 1]1H NMR (300 MHz, DMSO): 8.76 (m, 2H), 8.33 (m, 2H), 7.94 (s, 1H), 4.22 (m, 1H), 4.09 (m, 3H), 3.74 (m, 2H), 3.41 (m, 2H), 2.43 (s, 3H), 1.95 (m, 2H)
363BB-05
method: 2, RT: 1.82 min, MI: 312 [M + 1]1H NMR (300 MHz, DMSO): 8.72 (m, 2H), 8.35 (m, 2H), 8.16 (m, 1H), 7.93 (s, 1H), 4.02 (m, 4H), 2.96 (m, 4H), 2.44 (s, 3H)
364BB-05
method: 2, RT: 1.79 min, MI: 312 [M + 1]
365BB-05
method: 2, RT: 1.89 min, MI: 300 [M + 1]
366BB-06
method: 2, RT: 2.22 min, MI: 362 [M + 1]
367BB-06
method: 2, RT: 2.21 min, MI: 362 [M + 1]
368BB-06
method: 2, RT: 2.23 min, MI: 388 [M + 1]1H NMR (300 MHz, DMSO): 8.72 (d, 2H), 8.27 (d, 2H), 7.97 (s, 1H), 7.90 (d, 2H), 7.49 (m, 3H), 4.21 (m, 2H), 4.11 (m, 2H), 3.33 (m, 2H), 3.08 (m, 2H), 2.1 (m, 2H)
369BB-05
method: 2, RT: 1.82 min, MI: 300 [M + 1]
370BB-05
method: 2, RT: 1.76 min, MI: 286 [M + 1]
371BB-09
method: 2, RT: 2.24 min, MI: 387 [M + 1]
372BB-09
method: 2, RT: 2.57 min, MI: 446 [M + 1]
373BB-09
method: 2, RT: 2.22 min, MI: 370 [M + 1]
374BB-09
method: 2, RT: 2.26 min, MI: 370 [M + 1]
375BB-10
method: 2, RT: 1.82 min, MI: 323 [M + 1]1H NMR (300 MHz, DMSO): 8.86 (dd, 1H), 8.77 (m, 3H), 8.41 (m, 2H), 7.69 (dd, 1H), 3.86 (m, 2), 3.10 (m, 2H)
376BB-10
method: 2, RT: 1.86 min, MI: 349 [M + 1]
377B-10
method: 2, RT: 1.92 min, MI: 362 [M + 1]1H NMR (300 MHz, DMSO): 8.97 (dd, 1H), 8.76 (m, 3H), 8.34 (m, 2H), 7.65 (dd, 1H), 4.07 (m, 4), 3.18 (m, 2H), 2.93 (m, 2H)
378BB-10
method: 2, RT: 1.9 min, MI: 337 [M + 1]
379BB-10
method: 2, RT: 1.89 min, MI: 3371H NMR (300 MHz, DMSO): 8.87 (dd, 1H), 8.79 (m, 3H), 8.44 (m, 2H), 7.69 (dd, 1H), 3.80 (m, 2), 3.48 (m, 1H), 1.26 (d, 3H)
380BB-11
method: 2, RT: 2.15 min, MI: 377
381BB-11
method: 2, RT: 2.17 min, MI: 391
382BB-11
method: 2, RT: 2.19 min, MI: 365
383BB-11
method: 2, RT: 2.16 min, MI: 365
384BB-09
method: 2, RT: 2.32 min, MI: 382
385BB-09
method: 2, RT: 2.32 min, MI: 370
386BB-09
method: 2, RT: 2.16 min, MI: 356
387BB-09
method: 2, RT: 2.20 min, MI: 3821H NMR (300 MHz, DMSO): 8.78 (dd, 2H), 8.40 (dd, 2H), 8.18 (m, 1H), 7.69 (dd, 2H), 4.04 (m, 4), 2.98 (m, 4H)
Boronic acid a
ExampleSM[G-123]Characterisation
390[336]
method: 4, RT: 3.26 min, MI: 428 [M + 1]1H NMR (DMSO, 300 MHz) 8.72 (2H, d), 8.56 (1H, s, br), 8.43 (3H, m, br), 8.12 (2H, dd), 7.78 (1H, d, br), 7.34 (5H, m), 3.91 (1H, m), 3.45 (2H, m), 2.82 (2H, m)
391[336]
method: 4, RT: 3.30 min, MI 442 [M + 1]
392[336]
method: 4, RT: 3.65 min, MI 457 [M + 1]1H NMR (DMSO, 300 MHz): 8.66 (2H, d), 8.38 (1H, s, br), 8.22 (1H, s), 8.00 (2H, d), 7.30 (6H, m), 3.85 (1H, m, br), 3.34 (2H, m), 2.73 (2H, t), 2.43 (3H, s), 2.25 (3H, s)
393[336]
method: 3, RT: 2.25 min, MI: 428 [M + 1]
394[336]
method: 3, RT: 2.81 min, MI: 484 [M + 1]
395[336]
method: 3, RT: 2.92 min, MI: 458 [M + 1]1H NMR (DMSO, 300 MHz): 8.72 (2H, dd), 8.50 (1H, s, br), 8.39 (1H, s), 8.29 (1H, s), 8.12 (2H, dd), 7.72 (1H, s), 7.35 (4H, m), 7.20 (1H, s), 3.91 (1H, d), 3.48 (1H, d), 2.84 (1H, m), 2.49 (2H, m), 2.29 (3H, s)
396[336]
method: 3, RT: 2.89 min, MI: 458 [M + 1]1H NMR (DMSO, 300 MHz): 8.68 (2H, dd), 8.61 (1H, s, br), 8.30 (1H, s), 8.25 (1H, s), 8.06 (2H, dd), 7.57 (1H, d), 7.35 (4H, m), 7.06 (1H, d), 3.95 (1H, d), 3.52 (1H, m), 2.93 (1H, m), 2.49
(2H, m), 2.40 (3H, s)
397[336]
method: 3, RT: 2.53 min, MI: 427 [M + 1]
398[336]
method: 3, RT: 2.47 min, MI: 427 [M + 1]
399[336]
Method: 5, RT: 4.82 min, MI: 500 [M + 1]
400[336]
method: 5, RT: 2.95 min, MI: 430 [M + 1]
401[336]
method: 5, RT: 3.68 min, MI: 428 [M + 1]
402[336]
method: 5, RT: 3.98 min, MI: 462 [M + 1]1H NMR (DMSO, 300 MHz): 8.80 (1H, s, br), 8.68 (2H, d), 8.48 (1H, s), 8.38 (1H, s), 8.05 (2H, d), 7.63 (2H, d), 7.47 (2H, m), 7.35 (4H, m), 3.94 (1H, d), 3.50 (2H, m), 2.94 (1H, dd), 2.82 (1H, dd)
403[351]
method: 5, RT: 1.97 min, MI: 364 [M + 1]1H NMR (DMSO, 300 MHz): 8.76 (2H, dd), 8.68 (1H, d), 8.44 (1H, s), 8.38 (2H, dd), 8.31 (1H, s), 7.79 (1H, d), 7.37 (1H, d), 5.01 (1H, m), 3.60 (1H, dd), 3.29 (2H, m), 2.49 (2H, m), 2.32 (1H,
m), 2.15 (1H, m)
404[336]
method: 5, RT: 3.13 min, MI: 432 [M + 1]
405[336]
method: 6, RT: 5.99 min, MI: 428 [M + 1]1H NMR (DMSO, 300 MHz): 8.66 (2H, dd), 8.46 (1H, s, br), 8.34 (1H, s), 8.01 (2H, dd), 7.95 (1H, s), 7.35 (5H, m), 6.81 (1H, d), 6.47 (1H, dd), 3.91 (2H, d, br), 3.51 (2H, m), 2.91 (1H, dd),
2.81 (1H, dd), 1.64 (1H, m), 0.85
(2H, m), 0.56 (2H, m).
406[336]
method: 5, RT: 4.28 min, MI: 444 [M + 1]
407[336]
method: 6, RT: 5.95 min, MI: 402 [M + 1]1H NMR (DMSO, 300 MHz): 8.66 (2H, dd), 8.32 (1H, s), 8.10 (1H, s), 8.04 (2H, dd), 7.36 (5H,
m), 6.88 (1H, dd), 6.00 (1H, m),
3.91 (2H, d, br), 3.49 (3H, m),
2.88 (1H, dd), 2.81 (1H, dd),
1.97 (2H, dd), 1.92 (1H, dd)
408[336]
method: 5, RT: 3.26 min, MI: 388 [M + 1]
409[336]
method: 5, RT: 4.01 min, MI: 456 [M + 1]1H NMR (DMSO, 300 MHz): 8.83 (1H, s), 8.67 (2H, d), 8.41 (1H, s), 8.36 (1H, s), 8.17 (2H, t), 7.97 (2H, d), 7.38 (5H, m), 4.00 (1H, m), 3.64 (2H, m), 3.08 (1H, dd), 2.89 (1H, dd)
410[336]
method: 5, RT: 2.24 min, MI: 439 [M + 1]
411[336]
method: 5, RT: 3.02 min, MI: 442 [M + 1]
412[336]
method: 5, RT: 4.01 min, MI: 442 [M + 1]
413[336]
method: 5, RT: 3.36 min, MI: 402 [M + 1]1H NMR (DMSO, 300 MHz): 8.66 (2H, d), 8.37 (1H, s), 8.02 (2H, d), 7.59 (1H, s), 7.35 (5H, m), 3.93 (1H, m), 3.52 (2H, m), 2.93 (1H, dd), 2.82 (1H, dd),
2.38 (2H, m), 1.00 (3H, m)
414[BBG-39a]
method: 5, RT: 2.96 min, MI: 428 [M + 1]
415[336]
method: 5, RT: 3.07 min, MI: 442 [M + 1]1H NMR (DMSO, 300 MHz): 8.72 (1H, s), 8.70 (2H, d), 8.39 (1H, s), 8.34 (1H, s), 8.03 (2H, d), 7.81 (1H, d), 7.37 (5H, m), 3.92 (3H, s), 3.56 (3H, m), 2.93 (1H, dd), 2.77 (1H, m)
416[BB-33]
method: 5, RT: 3.42 min, MI: 446 [M + 1]1H NMR (DMSO, 300 MHz): 8.73 (d, 1H), 8.57 (d, 1H), 8.43 (s, 1H), 8.24 (s, 1H), 8.03 (m, 1H), 7.74 (s, 1H), 7.27 (m, 5H), 3.70 (m, 1H), 2.75 (m, 1H), 2.64 (m, 1H)
417[336]
method: 6, RT: 6.53 min, MI: 438 [M + 1]1H NMR (DMSO, 300 MHz): 8.67 (3H, d, br), 8.42 (1H, s), 8.30 (2H, m), 8.12 (2H, d), 8.00 (2H, d), 7.53 (2H, t), 7.40-7.37 (5H, m), 4.00 (1H, m), 3.58 (2H, m), 3.00 (1H, dd), 2.86-2.81 (1H,
m)
418[336]
method: 5, RT: 3.48 min, MI: 468 [M + 1]1H NMR (DMSO, 300 MHz): 8.69 (2H, d), 8.64 (1H, s, br), 8.35 (1H, s), 8.27 (2H, s, br), 8.03 (2H, d), 7.42-7.36 (5H, m), 6.95 (1H, s), 4.00 (1H, d, br), 3.71-3.58 (2H, m), 3.13 (1H, dd), 2.84 (1H, dd), 2.03-1.98 (1H, m), 0.98-0.92 (2H, m), 0.78-0.73 (2H, m)
419[BB-33]
method: 6, RT: 5.23 min, MI: 445 [M + 1]
420[BB-33]
method: 5, RT: 5.61 min, MI: 445 [M + 1]1H NMR (DMSO, 300 MHz): 8.26 (s, 1H), 8.70 (d, 1H), 8.53 (d, 1H), 7.96 (s, 1H), 7.91 (m, 1H), 7.30 (m, 5H), 6.83 (d, 1H), 6.68 (d, 1H), 3.66 (m, 1H), 2.74 (m, 2H), 2.62
(m, 2H)
421[BB-33]
method: 5, RT: 4.32 min, MI: 514 [M + 1]
422[BB-33]
method: 5, RT: 3.4 min, MI: 458 [M + 1]
423[BB-33] 0r [304]
method: 5, RT: 3.03 min, MI: 457 [M + 1]
424[BB-33]
method: 5, RT: 3.61 min, MI: 486 [M + 1]
425[BB-33]
method: 5, RT: 3.7 min, MI: 486 [M + 1]
426[BB-33]
method: 5, RT: 4.02 min, MI: 446 [M + 1]
427[BB-33]
method: 5, RT: 2.51 min, MI: 485 [M + 1]
428[BB-33]
method: 5, RT: 3.44 min, MI: 475 [M + 1]1H NMR (MeOD, 300 MHz): 8.58 (d, 1H), 8.52 (s, 1H), 8.49 (d, 1H), 7.93 (m, 1H), 7.32 (m, 5H), 3.95 (m, 2H), 3.77 (m, 1H), 3.03 (m, 2H), 2.43 (s, 3H), 2.27 (s, 3H)
429[BB-33]
method: 5, RT: 2.64 min, MI: 457 [M + 1]
430[BB-33]
method: 5, RT: 4.21 min, MI: 474 [M + 1]
431[BB-33]
method: 5, RT: 4.12 min, MI: 462 [M + 1]1H NMR (DMSO, 300 MHz): 8.62 (m, 2H), 8.52 (m, 2H), 8.08 (dd, 1H), 7.8 (dd, 1H), 7.48 (dd, 1H), 7.35 (m, 5H), 4.03 (m, 2H), 3.93 (m, 2H), 3.76 (m, 1H)
432[BB-33]
method: 5, RT: 4.07 min, MI: 446 [M + 1]
433[BB-33]
method: 5, RT: 4.02 min, MI: 470 [M + 1]
434[BB-33]
method: 5, RT: 4.11 min, MI: 456 [M + 1]
435[BB-33]
method: 5, RT: 2.51 min, MI: 475 [M + 1]
436[334]
method: 4, RT: 5.49 min, MI: 512 [M + 1]
437[334]
Method: 4, RT: 3.82 min, MI: 484 [M + 1]
438[300]
method: 4, RT: 4.24 min, MI: 471 [M + 1]
439[300]
method: 4, RT: 3.37 min, MI: 483 [M + 1]1H NMR (DMSO, 300 MHz): 8.59 (dd, 2H), 8.53 (d, 1H), 8.36 (d, 2H), 7.86 (d, 2H), 7.33 (m, 5H), 7.25 (d, 1H), 3.81 (s, 3H), 3.45 (m, 2H), 2.81 (m, 3H), 2.44 (s, 3H)
440[300]
method: 4, RT: 4.49 min, MI: 540 [M + 1]
441[334]
method: 4, RT: 5.35 min, MI: 524 [M + 1]
442[334]
method: 4, RT: 5.51 min, MI: 512 [M + 1]
443[334]
method: 4, RT: 4.79 min, MI: 513 [M + 1]
444[334]
method: 4, RT: 4.57 min, MI: 509 [M + 1]
445[334]
method: 4, RT: 5.07 min, MI: 484 [M + 1]
446[300]
method: 4, RT: 4.80 min, MI: 528 [M + 1]1H NMR (DMSO, 300 MHz): 8.62 (dd, 2H), 7.90 (dd, 2H), 7.46 (m, 1H), 7.29 (m, 5H), 7.27 (m, 1H), 7.16 (m, 1H), 3.84 (m, 2H), 3.16 (d, 6H), 2.92 (m, 2H), 2.81 (m, 1H), 2.65 (m, 1H), 2.53 (s, 3H)
447[334]
method: 4, RT: 5.72 min, MI: 514 [M + 1]
448[334]
method: 4, RT: 4.45 min, MI: 523 [M + 1]
449[300]
method: 4, RT: 4.51 min, MI: 452 [M + 1]1H NMR (DMSO, 300 MHz): 8.62 (dd, 2H), 7.90 (dd, 2H), 7.57 (m, 5H), 7.34 (m, 5H), 3.5 (m, 1H), 2.92 (m, 2H), 2.81 (m, 1H), 2.65 (m, 1H), 2.6 (s, 3H)
450[300]
method: 4, RT: 4.59 min, MI: 496 [M + 1]
451[334]
method: 4, RT: 5.51 min, MI: 494 [M + 1]
452[300]
method: 4, RT: 5.02 min, MI: 554 [M + 1]
453[300]
method: 4, RT: 4.41 min, MI: 516 [M + 1]
454[300]
method: 4, RT: 4.12 min, MI: 512 [M + 1]
455[330]
method: 4, RT: 4.74 min, MI: 554 [M + 1]
456[300]
method: 4, RT: 3.45 min, MI: 483 [M + 1]
457[300]
method: 4, RT: 3.73 min, MI: 487 [M + 1]
458[300]
method: 4, RT: 5.03 min, MI: 524 [M + 1]1H NMR (DMSO, 300 MHz): 8.6 (dd, 2H), 7.85 (dd, 2H), 7.34 (m, 5H), 7.17 (m, 1H), 7.03 (m, 2H), 3.5 (m, 1H), 2.92 (m, 2H), 2.81 (m, 2H), 2.53 (d, 6H), 2.65 (m, 1H), 2.41 (s, 3H), 2.3 (s, 3H)
459[300]
method: 4, RT: 3.49 min, MI: 467 [M + 1]
460[300]
method: 4, RT: 5.13 min, MI: 544 [M + 1]1H NMR (DMSO, 300 MHz): 8.62 (dd, 2H), 7.92 (dd, 2H), 7.44 (m, 5H), 7.32 (m, 1H), 7.28 (m, 2H), 7.19 (m, 2H), 3.5 (m, 1H), 2.92 (m, 2H), 2.81 (m, 2H), 2.65 (m, 1H), 2.53 (d, 6H), 2.42 (s, 3H)
461[300]
462[300]
method: 4, RT: 5.14 min, MI: 524 [M + 1]
463[300]
method: 4, RT: 4.91 min, MI: 530 [M + 1]
464[300]
method: 4, RT: 4.73 min, MI: 550 [M + 1]
465[300]
method: 4, RT: 3.96 min, MI: 483 [M + 1]1H NMR (DMSO, 300 MHz): 8.6 (dd, 2H), 8.28 (dd, 1H), 7.82 (dd, 2H), 7.72 (m, 1H), 7.34 (m, 5H), 7.15 (m, 1H), 3.82 (s, 3H), 3.5 (m, 3H), 2.93 (m, 1H), 2.82 (m, 1H), 2.43 (s, 3H)
466[300]
method: 4, RT: 4.24 min, MI: 512 [M + 1]
467[300]
method: 4, RT: 4.35 min, MI: 500 [M + 1]
468[334]
method: 4, RT: 3.83 min, MI: 484 [M + 1]
469[BB-41]
method: 3, RT: 2.26 min, MI: 392 [M + 1]
a site of attachment to thieno pyrimidine core.
b Clapham, Kate M.; Batsanov, Andrei S.; Bryce, Martin R.; Tarbit, Brian, Organic and Biomolecular Chemistry , 2009, vol. 7, p. 2155-216
RxRyNH
ExampleSM[G-133]Characterisation
486[336]
method: 5, RT: 3.06 min, MI: 454 [M + 1]
487[351]
method: 5, RT: 1.60 min, MI: 390 [M + 1]1H NMR (300 MHz, DMSO): 9.07 (1H, s), 8.76 (2H, d), 8.54 (2H, d), 8.39 (2H, t), 8.26 (1H, d), 7.66 (1H, t), 7.35 (1H, d), 6.84 (1H, t),
4.90 (1H, m), 3.44 (2H, m),
3.09 (2H, m), 2.25 (1H, m),
1.88 (1H, m)
488[336]
method: 5, RT: 3.33 min, MI: 455 [M + 1]1H NMR (300 MHz, DMSO): 9.02 (1H, s), 8.67 (2H, s, br), 8.61 (2H, d), 8.25 (1H, s), 8.18 (2H, d), 7.35 (5H, m), 6.98 (2H, t), 3.95 (1H, m),
3.49 (2H, m), 2.93 (1H, m),
2.81 (1H, m)
489[336]
method: 5, RT: 3.22 min, MI: 455 [M + 1]
490[336]
method: 5, RT: 3.29 min, MI: 458 [M + 1]
491[BB-33]
method: 5, RT: 4.15 min, MI: 471 [M + 1]1H NMR (300 MHz, MeOD): 8.62 (d, 1H), 8.53 (s, 1H), 8.51 (d, 1H), 8.12 (m, 1H), 7.33 (m, 10H), 3.95 (m, 2H), 3.76 (m, 1H), 3.04 (m, 2H)
492[352]
method: 5, RT: 3.89 min, MI: 421 [M + 1]
493[352]
method: 5, RT: 3.64 min, MI: 425 [M + 1]
494[352]
method: 5, RT: 1.19 min, MI: 408 [M + 1]
495[352]
method: 5, RT: 2.08 min, MI: 408 [M + 1]
496[352]
method: 5, RT: 3.07 mi, MI: 412 [M + 1]
497[352]
method: 5, RT: 2.82 min, MI: 398 [M + 1]
498[352]
method: 5, RT: 3.95 min, MI: 421 [M + 1]1H NMR (300 MHz, MeOD): 8.6 (1H, d), 8.52 (1H, d), 8.48 (1H, s), 8.27 (1H, m), 7.23 (2H, d), 7.35 (1H, d), 6.92 (1H, m), 4.9 (1H, m), 3.44
(2H, m), 3.09 (2H, m), 2.25
(1H, m), 1.88 (1H, m)
499[352]
method: 5, RT: 3.69 min, MI: 425 [M + 1]
500[352]
method: 5, RT: 3.8 min, MI: 425 [M + 1]1H NMR (300 MHz, MeOD): 8.61 (1H, d), 8.53 (1H, d), 8.49 (1H, s), 8.28 (1H, m), 7.24 (2H, d), 7.34 (1H, d), 6.91 (1H, m), 4.91 (1H, m), 3.44 (2H, m), 3.08 (2H, m),
2.27 (1H, m), 1.88 (1H, m)
Terminal alkyne g Derived from TBDMS protected acetylene. h Derived from TMS protected acetylene.
ExSM[G-136]Characterisation
503[328]
method: 5, RT: 2.41 min, MI: 394 [M + 1]
504[300]
method: 5, RT: 3.28 min, MI: 458 [M + 1]
505[334]
method: LC-MS15QC, RT: 5.93 min, MI: 500 [M + 1]
506[BB-33]
method: 5, RT: 3.02 min, MI: 434 [M + 1]1H NMR (300 MHz, DMSO): 8.68 (1H, d), 8.56 (1H, dd), 8.38 (1H, s), 7.89 (1H, m), 7.24 (5H, m) 4.35 (2H, s), 3.67 (2H, m), 3.25 (2H, m), 2.77 (1H, m), 2.58 (1H, m)
507[BB-33]
method: 5, RT: 3.55 min, MI: 474 [M + 1]1H NMR (300 MHz, MeOD): 8.62 (d, 1H), 8.53 (d, 1H), 8.47 (s, 1H), 8.20 (s, 1H), 7.98 (m, 1H), 7.31 (m, 5H), 4.62 (s, 2H), 3.95 (m, 2H), 3.74 (m, 1H), 3.02 (d, 2H), 2.55 (m, 2H), 2.35 (m, 2H), 1.89 (m, 2H)
508[BB-33]
method: 5, RT: 3.32 min, : 448 [M + 1]1H NMR (300 MHz, DMSO): 8.68 (d, 1H), 8.53 (d, 1H), 8.35 (s, 1H), 7.84 (dd, 1H), 7.25 (m, 5H), 4.62 (q, 1H), 3.71 (m, 1H), 3.45 (m, 2H), 2.80 (m, 2H) 1.39 (d, 3H)
509[BB-33]
method: LC-MS15QC, RT: 5.58 min, MI: 462 [M + 1]1H NMR (300 MHz, DMSO): 8.68 (d, 1H), 8.53 (d, 1H), 8.31 (s, 1H), 7.91 (t, 1H), 7.25 (m, 5H), 3.68 (m, 1H), 2.75 (m, 2H), 2.60 (m, 2H), 1.49 (s, 6H)
510[BB-34]
method: 6, RT: 4.87 min, MI: 444 [M + 1]1H NMR (DMSO, 300 MHz): 8.77 (1H, s, br), 8.68 (2H, d), 8.37 (1H, s, br), 8.29 (1H, s), 8.00 (2H, d), 7.36 (5H, m), 3.93 (1H, d, br), 3.50 (2H, m), 2.93 (1H, dd), 2.82 (1H, m), 1.53 (6H, s)
511[BB-34]
method: 5, RT: 4.01 min. MI: 442 [M + 1]
512[336]
method: 5, RT: 3.41 min, MI: 426 [M + 1]
513[336]
method: 5, RT: 2.84 min, MI: 430 [M + 1]1H NMR (DMOS, 300 MHz) 8.75 (2H, s, br), 8.37 (1H, t), 8.30 (1H, s), 8.13 (2H, s, br), 7.39 (5H, m), 4.70 (1H, q), 3.93 (1H, dd), 3.65 (2H, m), 3.13 (1H, dd), 1.45 (3H, d)
514[351]
method: 5, RT: 2.10 min, MI: 380 [M + 1]1H NMR (DMSO, 300 MHz) 8.75 (2H, d), 8.66 (1H, d), 8.35 (2H, d), 4.98 (1H, m), 3.60 (1H, m), 3.31 (2H, m), 2.35 (2H, m), 2.12 (2H, m), 1.56 (6H, s)
515[BB-34]
method: 5, RT: 2.59 min, MI: 416 [M + 1]1H NMR (DMSO, 300 MHz) 8.68 (2H, d), 8.37 (1H, s), 8.01 (2H, d), 7.36 (5H, m), 4.40 (2H, s), 3.95 (2H, m), 3.49 (2H, m), 2.95 (1H, m), 2.77 (1H, m)
516[336]
method: 5, RT: 2.16 min, MI: 443 [M + 1]1H NMR (DMSO, 300 MHz) 8.69 (2H, d), 8.27 (1H, s, br), 8.21 (1H, s), 8.11 (2H, d), 7.33-7.26 (5H, m), 3.82 (1H, m), 3.30 (2H, m), 2.71 (2H, m), 1.44 (6H, s)
517[351]
method: 5, RT: 1.83 min, MI: 366 [M + 1]1H NMR (DMSO, 300 MHz): 8.75 (2H, d), 8.59 (1H, s), 8.34 (2H, d), 4.91 (1H, m), 4.70 (1H, m), 3.46 (1H, m), 3.23 (1H, m) 3.16 (1H, m), 2.27 (1H, m), 2.07 (2H, m), 1.46 (3H, d)
518[336]
method: 5, RT: 3.73 min, MI: 428 [M + 1]1H NMR (DMSO, 300 MHz): 8.68 (2H, d), 8.46 (1H, s), 8.24 (1H, s), 8.05 (2H, d), 7.33 (5H, m), 3.89 (1H, m), 2.91 (1H, m), 2.81 (1H, m), 1.29 (3H, s), 1.27 (3H, s)
519[352]
method 6, 4.79 min, 398 [M + H]
520[336]
method: 5, RT: 3.48 min, MI: 458 [M + 1]1H NMR (DMSO, 300 MHz): 8.69 (2H, d), 8.36 (1H, s), 8.05 (2H, d), 7.35-7.29 (5H, m), 3.87 (1H, m), 3.45 (3H, s), 2.79-2.71 (2H, m), 1.53 (6H, s)
521[336]
method: 5, RT: 3.17 min, MI: 444 [M + 1]1H NMR (DMSO, 300 MHz): 8.68 (2H, d), 8.47 (1H, s), 8.32 (1H, s), 8.27 (1H, s), 8.05 (2H, d), 7.35- 7.29 (5H, m), 4.48 (1H, t), 3.88 (1H, d, br), 3.41 (2H, m), 2.89-2.77 (2H, m), 1.77-1.67 (2H, m), 1.08
(3H, t)
522[336]
method: 6, RT: 6.22 min, MI: 486 [M + 1]1H NMR (DMSO, 300 MHz): 8.67 (2H, d), 8.51 (1H, s, br), 8.31 (1H, s), 8.05 (2H, d), 7.36-7.28 (5H, m), 4.40 (1H, dd), 3.89 (1H, m), 3.42 (2H, m), 2.81 (2H, m), 1.72 (2H, m), 1.43 (1H, m), 1.31 (2H, m), 1.04 (3H, m), 0.89 (3H, t)
523[336]
method: LC-MS15QC, RT: 5.80 min, MI: 458 [M + 1]
524[336]
method: 5, RT: 3.60 min, MI: 472 [M + 1]
525[336]
method: 5, RT: 3.70 min, MI: 472 [M + 1]
526[336]
method: 5, RT: 3.46 min, MI: 458 [M + 1]1H NMR (DMSO, 30 0MHz): 8.67 (2H, d), 8.52 (1H, s, br), 8.30 (1H, s), 8.26 (1H, s), 8.03 (2H, d), 7.38- 7.31 (5H, m), 4.54 (1H, t), 3.90 (1H, m), 3.49 (2H, m), 2.90-2.81 (2H, m), 1.71-1.56 (4H, m), 0.97 (3H, s)
527[352]
method: 5, RT: 2.44 min, MI: 384 [M + 1]1H NMR (DMSO, 300 MHz): 8.02 (dd, 1H), 8.21 (bs, 1H), 8.70 (d, 1H), 8.55 (d, 1H), 8.47 (s, 1H), 4.64 (q, 1H), 3.88 (m, 1H), 3.66 (m, 2H), 3.12 (m, 2H), 2.24 (m, 1H), 2.19 (m, 1H), 1.43 (d, 3H)
528[BB-34]
method: 5, RT: 3.48 min, MI: 470 [M + 1]1H NMR (DMSO, 300 MHz): 8.70 (1H, s, br), 8.68 (2H, d), 8.35 (1H, s), 8.29 (1H, s), 8.00 (2H, d), 7.36- 7.33 (5H, m), 3.93 (1H, d, br), 3.46-3.41 (2H, m), 2.92 (1H, dd), 2.79-2.75 (1H, m), 2.00-1.90 (4H, m), 1.75 (4H, d, br)
529[336]
method: 5, RT: 3.27 min, MI: 463 [M + 1]1H NMR (DMSO, 300 MHz): 9.06 (1H, s, br), 8.67 (2H, d), 8.64 (1H, m), 8.60 (1H, s), 8.38 (1H, s), 8.01 (2H, d), 7.89 (1H, t), 7.72 (1H, d), 7.47-7.34 (6H, m), 4.02-3.97 (1H, m), 3.59-3.50 (2H, m), 3.03 (1H, dd), 2.86-2.77 (1H, m)
530[336]
method: 5, RT: 4.00 min, MI: 480 [M + 1]1H NMR (DMSO, 300 MHz): 8.83 (1H, s, br), 8.67 (2H, d), 8.54 (1H, s), 8.37 (1H, s), 8.04 (2H, d), 7.71 (1H, t), 7.53-7.48 (1H, m), 7.41- 7.28 (6H, m), 3.97-3.94 (1H, m), 3.50-3.46 (2H, m), 2.95 (1H, dd), 2.84-2.77 (1H, m)
531[336]
method: 5, RT: 2.67 min, MI: 430 [M + 1]1H NMR (DMSO, 300 MHz): 8.79 (1H, s, br), 8.67 (2H, d), 8.28 (3H, d), 7.98 (2H, d), 7.40-7.34 (5H, m), 3.97 (1H, d, br), 3.64 (2H, t), 3.54-3.48 (2H, m), 3.01 (1H, dd), 2.84 (1H, m), 2.63 (2H, t)
532[336]
method: 5, RT: 2.89 min, MI: 442 [M + 1]1H NMR (DMSO, 300 MHz): 8.69 (2H, d), 8.39 (1H, s), 8.28 (2H, d), 8.06 (2H, d), 7.35-7.28 (5H, m), 6.41 (1H, s, br), 3.86 (1H, m), 2.86 (2H, m), 2.78-2.72 (2H, m), 1.13 (2H, t), 1.04 (2H, m)
533[336]
method: 5, RT: 2.74 min, MI: 430 [M + 1]1H NMR (DMSO, 300 MHz): 8.85 (1H, s, br), 8.67 (2H, d), 8.33 (1H, s), 8.29 (2H, s, br), 7.98 (2H, d), 7.41-7.36 (5H, m), 4.68 (1H, q), 3.97 (1H, d, br), 3.62-3.51 (2H, m), 2.93 (1H, dd), 2.84 (1H, dd), 1.45 (3H, s)
534[336]
method: 5, RT: 2.76 min, MI: 430 [M + 1]1H NMR (DMSO, 300 MHz): 8.87 (1H, s, br), 8.67 (2H, d), 8.33 (1H, s), 8.29 (2H, s, br), 7.97 (2H, d), 7.41-7.36 (5H, m), 4.68 (1H, q), 3.97 (1H, d, br), 3.64-3.52 (2H, m), 2.93 (1H, dd), 2.84 (1H, dd), 1.45 (3H, s)
535[336]
method: 5, RT: 2.84 min, MI: 444 [M + 1]1H NMR (DMSO, 300 MHz): 8.76 (1H, s, br), 8.67 (2H, d), 8.35 (2H, s), 8.25 (1H, s), 7.99 (2H, d), 7.39- 7.32 (5H, m), 3.96 (1H, d, br), 3.61 (2H, t), 3.51-3.46 (2H, m), 2.97 (1H, dd), 2.82 (1H, dd), 2.55 (2H, m), 1.74 (2H, q)
536[336]
method: 5, RT: 2.93 min, MI: 444 [M + 1]1H NMR (DMSO, 300 MHz): 8.77 (1H, s, br), 8.66 (2H, d), 8.30 (2H, s, br), 8.26 (1H, s), 7.98 (2H, d), 7.40-7.34 (5H, m), 3.96-3.90 (2H, m), 3.60-3.49 (2H, m), 3.00 (1H, dd), 2.86-2.82 (1H, m), 2.63 (1H, dd), 1.29 (3H, d)
537[336]
method: 5, RT: 3.08 min, MI: 458 [M + 1]1H NMR (DMSO, 300 MHz): 8.68 (2H, d), 8.24 (2H, s, br), 8.09 (2H, d), 7.32-7.25 (5H, m), 4.67 (1H, s), 3.80 (1H, d, br), 3.28 (2H, m), 2.72-2.67 (2H, m), 2.58 (2H, s), 1.34 (6H, s).
538[336]
method: 5, RT: 1.44 mi, MI: 429 [M + 1]1H NMR (DMSO, 300 MHz): 8.67 (2H, d), 8.31 (2H, s), 8.01 (2H, d), 7.38-7.31 (5H, m), 3.93 (1H, d, br), 3.63 (2H, s), 3.48-3.40 (2H, m), 2.93 (1H, dd), 2.80 (1H, dd), 2.45 (3H, s)
539[BB-34]
method: 5, RT: 3.18 min, MI: 456 [M + 1]1H NMR (MeOD, 300 MHz): 8.61 (2H, d), 8.25 (2H, d), 8.10 (1H, s), 7.37-7.27 (5H, m), 4.01-3.98 (1H, m), 3.58-3.52 (2H, m), 2.86 (2H, dd), 2.65-2.55 (2H, m), 2.42-2.32 (2H, m), 1.99-1.92 (2H, m)
540[BB-34]
method: 5, RT: 6.43 min, MI: 444 [M + 1]1H NMR (MeOD, 300 MHz): 8.58 (2H, d), 8.35 (2H, s), 8.13 (2H, d), 8.03 (1H, s), 7.41-7.35 (5H, m), 4.13 (1H, dd), 4.05 (1H, q), 3.92- 3.89 (1H, m), 3.70 (1H, dd), 3.11 (1H, dd), 3.00 (1H, dd), 2.66 (2H, d), 1.41 (3H, d)
541[336]
method: 5, RT: 2.82 min, MI: 386 [M + 1]1H NMR (MeOD, 300 MHz): 8.65 (2H, dd), 8.29 (1H, s), 8.25 (2H, dd), 7.41-7.35 (5H, m), 4.09 (1H, dd), 3.86 (1H, s), 3.76-3.63 (2H, m), 3.00-2.97 (2H, d)
542[336]
method: 5, RT: 2.98 min, MI: 400 [M + 1]1H NMR (DMSO, 300 MHz): 8.66 (2H, d), 8.54 (1H, s, br), 8.31 (2H, s), 8.04 (2H, d), 7.93 (1H, s), 7.34 (5H, m), 6.73 (1H, t), 5.35 (2H, d), 3.80 (2H, m), 3.50 (2H, m), 2.99
(1H, dd), 2.65 (1H, dd)
543[BB-35]
method: 5, RT: 2.77 min, MI: 452 [M + 1]
c Li-Mei Wei, Li-Lan Wei, Wen-Bin Pan and Ming-Jung Wu Tetrahedron Letters, 2003, vol. 44, p. 595-597
d Emme, Ingo; Bruneau, Christian; Dixneuf, Pierre H.; Militzer, Hans-Christian; Meijere, Armin de; Synthesis, 2007, vol. 22 p. 3574-358
e Dinges, Juergen; Albert, Daniel H.; Arnold, Lee D.; Ashworth, Kimba L.; Akritopoulou-Zanze, Irini; Bousquet, Peter F.; Bouska, Jennifer J.; Cunha, George A.; Davidsen, Steven K.; Diaz, Gilbert J.; Djuric, Stevan W.; et al. Journal of Medicinal Chemistry, 2007, vol. 50, No. 9 p. 2011-2029
f Bradbury, Barton J.; Baumgold, Jesse; Jacobson, Kenneth A. Journal of Medicinal Chemistry, 1990, vol. 33, No. 2 p. 741-748
Alkyne
ExSM[G-136]Characterisation
545[BB-34]
method: 5, RT: 2.97 min, MI: 418 [M + 1]1H NMR (DMSO, 300 MHz): 8.68 (2H, d), 8.60 (1H, s, br), 8.53 (1H, s), 8.28 (1H, s), 8.03 (2H, d), 7.37-7.30 (5H, m), 5.52 (1H, s), 5.37 (1H, s), 3.90 (1H, d, br), 3.47-3.39 (2H, m),
2.91-2.75 (2H, m)
546[BB-34]
method: 5, RT: 2.93 min, MI: 432 [M + 1]1H NMR (DMSO, 300 MHz): 8.68 (2H, d), 8.32 (1H, s), 8.27 (1H, s), 8.03 (2H, d), 7.37-7.30 (5H, m), 4.71 (1H, t), 4.56 (1H, t), 3.88 (1H, d, br), 3.46 (2H, m), 3.01 (1H, t), 2.93 (1H, t), 2.84-2.78 (2H, m)
ExSMArylhalide [G-137]Characterisation
39[BB-34]
method: 5, RT: 3.03 min, MI: 452 [M + 1]1H NMR (MeOD, 300 MHz): 8.61 (2H, d), 8.44 (1H, s), 8.28 (1H, s), 8.23 (2H, d), 7.71 (1H, s), 7.42- 7.38 (5H, m), 6.63 (1H, s), 4.15
(1H, dd), 3.96-3.89
(1H, m), 3.73
(1H, dd),
3.14-3.03 (2H, m).
Amine
ExSM[G-140]Characterisation
551[336]
method: 8, RT: 3.59 min, MI: 447 [M + 1]
552[336]
mcthod: 8, RT: 2.80 min, MI: 461 [M + 1]
553[336]
method: 6, RT: 5.12 min,
MI: 419 |M + 1]
554[336]
mcthod: 5, RT: 3.32 min, MI: 433 [M + 1]8 (d, 2H), 8.77 (s, 1H), 8.72 (d, 2H), 8.2 (s, 1H), 7.33 (m, 5H), 3.91 (m, 2H), 3.48 (m, 2H), 3.42 (m, 1H), 2.88 (m,
2H), 1.27 (t, 3H)
555[336]
method: 5, RT: 3.64 min, MI: 447 [M + 1]1H NMR (300 MHz, DMSO): 8.76 (s,1H)., 8.73 (d, 2H), 8.26 (s, 1H), 7.97 (d, 2H), 7.34 (m, 5H), 4.11 (sep, 1H),
3.91 (m, 2H), 3.48 (m, 2H),
3.42 (m, 1H), 1.32 (d, 6H)
556[336]
method: 5, RT: 3.43 min, MI: 445 [M + 1]1H NMR (300 MHz, DMSO): 8.72 (d, 2H), 8.29 (s, 1H), 7.89 (d, 2H), 7.33 (m, 5H), 3.90 (m, 1H), 3.47 (m, 2H),
2.95 (m, 2H), 2.76 (m, 1H),
0.85 (m, 2H), 0.65 (m, 2H)
557[336]
method: 5, RT: 3.95 min, MI: 461 [M + 1]1H NMR (300MHz, DMSO): 8.73 (s, 1H), 8.70 (d, 2H), 8.27 (s, 1H), 7.99 (d, 2H), 7.31 (m, 5H), 3.86 (m, 1H),
3.42 (m, 2H), 2.81 (m, 2H),
1.49 (s, 9H)
Amine method: 6, RT: 3.90 min, MI: 313 [M + 1]
ExampleSM[G-117]Characterisation
567[BB-44]
ExActivityStructureName
1C*
N,N-Dimethyl-N′-(2-pyridin-4- yl-5,6,7,8-tetrahydro-benzo- [4,5]thieno[2,3-d]pyrimidin-4- yl)-ethane-1,2-diamine
2B*
(R)-N*1*-(2-Pyridin-4-yl- 5,6,7,8-tetrahydro-benzo[4,5]- thieno[2,3-d]pyrimidin-4-yl)- propane-1,2-diamine
3B*
4-Piperazin-1-yl-2-pyridin-4- yl-5,6,7,8-tetrahydro-benzo- [4,5]thieno[2,3-d]pyrimidine
4B*
4-(4-Methyl-[1,4]diazepan-1- yl)-2-pyridin-4-yl-5,6,7,8- tetrahydro-benzo[4,5]- thieno[2,3-d]pyrimidine
5A*
(S)-N*1*-(2-Pyridin-4-yl- 5,6,7,8-tetrahydro-benzo[4,5]- thieno[2,3-d]pyrimidin-4-yl)- propane-1,2-diamine
6C*
(R)-4-Methylsulfanyl-N*1*- (2-pyridin-4-yl-5,6,7,8- tetrahydro-benzo[4,5]- thieno[2,3-d]pyrimidin- 4-yl)-butane-1,2-diamine
7C*
(R)-3-(1H-Indol-3-yl)-N*1*- (2-pyridin-4-yl-5,6,7,8- tetrahydro-benzo[4,5]- thieno[2,3-d]pyrimidin-4-yl)- propane-1,2-diamine
8B*
4-((S)-3-Methyl-piperazin-1- yl)-2-pyridin-4-yl-5,6,7,8- tetrahydro-benzo[4,5]- thieno[2,3-d]pyrimidine
9C*
4-((3R,5S)-3,5-Dimethyl- piperazin-1-yl)-2-pyridin-4- yl-5,6,7,8-tetrahydro-benzo- [4,5]thieno[2,3-d]pyrimidine
10C*
4-((2R,5S)-2,5-Dimethyl- piperazin-1-yl)-2-pyridin-4- yl-5,6,7,8-tetrahydro-benzo- [4,5]thieno[2,3-d]pyrimidine
11D*
(1S,2S)-N-(2-Pyridin-4-yl- 5,6,7,8-tetrahydro-benzo- [4,5]thieno[2,3-d]pyrimidin- 4-yl)-cyclopropane-1,2- diamine
12B
N*1*-(2-Pyridin-4-yl-5,6,7,8- tetrahydro-benzo[4,5]thieno- [2,3-d]pyrimidin-4-yl)-ethane- 1,2-diamine
13B*
N-Methyl-N′-(2-pyridin-4-yl- 5,6,7,8-tetrahydro-benzo[4,5]- thieno[2,3-d]pyrimidin-4-yl)- ethane-1,2-diamine
14B*
4-[1,4]Diazepan-1-yl-2- pyridin-4-yl-5,6,7,8- tetrahydro-benzo[4,5]- thieno[2,3-d]-pyrimidine
15B*
N*1*-Methyl-N*1*-(2-pyridin- 4-yl-5,6,7,8-tetrahydro- benzo[4,5]thieno[2,3-d]- pyrimidin-4-yl)-ethane-1,2- diamine
16C*
(R)-4-Methyl-N*1*-(2-pyridin- 4-yl-5,6,7,8-tetrahydro- benzo[4,5]thieno[2,3-d]- pyrimidin-4-yl)-pentane-1,2- diamine
17C*
(R)-N*1*-(2-Pyridin-4-yl- 5,6,7,8-tetrahydro-benzo- [4,5]thieno[2,3-d]pyrimidin- 4-yl)-butane-1,2-diamine
18B*
4-(1S,4S)-2,5-Diaza-bicyclo- [2.2.1]hept-2-yl-2-pyridin-4- yl-5,6,7,8-tetrahydro-benzo- [4,5]thieno[2,3-d]pyrimidine
19B*
(2-Pyridin-4-yl-5,6,7,8- tetrahydro-benzo[4,5]- thieno[2,3-d]pyrimidin- 4-yl)-(R)-pyrrolidin-3-yl- amine
20C*
(2-Pyridin-4-yl-5,6,7,8- tetrahydro-benzo[4,5]- thieno[2,3-d]pyrimidin- 4-yl)-(S)-pyrrolidin-3-yl- amine
21B*
N*1*-(7-Methyl-2-pyridin-4- yl-5,6,7,8-tetrahydro-benzo- [4,5]thieno[2,3-d]pyrimidin-4- yl)ethane-1,2-diamine
22C*
(S)-N*1*-(7-Methyl-2-pyridin- 4-yl-5,6,7,8-tetrahydro-benzo- [4,5]thieno[2,3-d]pyrimidin-4- yl)-propane-1,2-diamine
23C*
(R)-N*1*-(7-Methyl-2-pyridin- 4-yl-5,6,7,8-tetrahydro-benzo- [4,5]thieno[2,3-d]pyrimidin-4- yl)-propane-1,2-diamine
24B*
N*1*-(2-Pyridin-4-yl- 5,6,7,8,9,10-hexahydro-11- thia-1,3-diazacycloocta[a]- inden-4-yl)-ethane-1,2-diamine
25C*
(S)-N*1*-(2-Pyridin-4-yl- 5,6,7,8,9,10-hexahydro-11- thia-1,3-diaza-cycloocta[a]- inden-4-yl)-propane-1,2- diamine
26C*
(R)-N*1*-(2-Pyridin-4-yl- 5,6,7,8,9,10-hexahydro-11- thia-1,3-diaza-ycloocta[a]- inden-4-yl)-propane-1,2- diamine
27D
[4-(2-Amino-ethylamino)-2- pyridin-4-yl-5,8-dihydro-6H- pyrido[4′,3′:4,5]thieno[2,3-d]- pyrimidin-7-yl]-phenyl- methanone
28B*
N*1*-(5-Isobutyl-2-pyridin-4- yl-thieno[2,3-d]pyrimidin-4- yl)-ethane-1,2-diamine
29B*
(S)-N*1*-(5-Isobutyl-2- pyridin-4-yl-thieno[2,3-d]- pyrimidin-4-yl)-propane- 1,2-diamine
30C*
(R)-N*1*-(5-Isobutyl-2- pyridin-4-yl-thieno[2,3-d]- pyrimidin-4-yl)-propane- 1,2-diamine
31C*
(S)-N*1*-(5-Ethyl-6-methyl- 2-pyridin-4-yl-thieno[2,3-d]- pyrimidin-4-yl)-propane-1,2- diamine
32D*
(R)-N*1*-(5-Ethyl-6-methyl- 2-pyridin-4-yl-thieno[2,3-d]- pyrimidin-4-yl)-propane-1,2- diamine
33C*
N*1*-(6-Ethyl-2-pyridin-4-yl- thieno[2,3-d]pyrimidin-4-yl)- ethane-1,2-diamine
34C*
(S)-N*1*-(6-Ethyl-2-pyridin- 4-yl-thieno[2,3-d]pyrimidin-4- yl)-propane-1,2-diamine
35C*
(R)-N*1*-(6-Ethyl-2-pyridin- 4-yl-thieno[2,3-d]pyrimidin-4- yl)-propane-1,2-diamine
36B*
N*1*-(5,6-Dimethyl-2-pyridin- 4-yl-thieno[2,3-d]pyrimidin-4- yl)-ethane-1,2-diamine
37C*
(S)-N*1*-(5,6-Dimethyl-2- pyridin-4-yl-thieno[2,3-d]- pyrimidin-4-yl)-propane- 1,2-diamine
38C*
(R)-N*1*-(5,6-Dimethyl-2- pyridin-4-yl-thieno[2,3-d]- pyrimidin-4-yl)-propane-1,2- diamine
39B*
4-(2-Amino-ethylamino)-5- methyl-2-pyridin-4-yl-thieno- [2,3-d]pyrimidine-6-carboxylic acid amide
40C*
N*1*-(6-Isopropyl-2-pyridin- 4-yl-thieno[2,3-d]pyrimidin-4- yl)-ethane-1,2-diamine
41D*
(R)-N*1*-(6-Isopropyl-2- pyridin-4-yl-thieno[2,3-d]- pyrimidin-4-yl)-propane-1,2- diamine
42C
N*1*-1,4-Dioxa-spiro[7.7]- (2-pyridin-4-yl-5,6,7,8- tetrahydro-benzo[4,5]- thieno[2,3-d]pyrimidin-4-yl)- propane-1,2-diamine
43C
N*1*-(7,7-Dimethyl-2-pyridin- 4-yl-5,6,7,8-tetrahydro-benzo- [4,5]thieno[2,3-d]pyrimidin-4- yl)-ethane-1,2-diamine
44C
N*1*-(2-Pyridin-4-yl-5,8- dihydro-6H-thiopyrano- [4′,3′:4,5]thieno[2,3-d]- pyrimidin-4-yl)-ethane-1,2- diamine
45D
N*1*-(2-Pyridin-4-yl-5,8- dihydro-6H-pyrano[4′,3′:4,5]- thieno[2,3-d]pyrimidin-4-yl)- ethane-1,2-diamine
46C
(S)-N*1*-(2-Pyridin-4-yl- 5,6,7,8-tetrahydro-benzo- [4,5]thieno[2,3-d]pyrimidin- 4-yl)-3-p-tolyl-propane-1,2- diamine
47B
(S)-3-(4-Methoxy-phenyl)- N*1*-(2-pyridin-4-yl-5,6,7,8- tetrahydro-benzo[4,5]- thieno[2,3-d]pyrimidin-4-yl)- propane-1,2-diamine
48B
(S)-N*1*-(2-Pyridin-4-yl- 5,6,7,8-tetrahydro-benzo[4,5]- thieno[2,3-d]pyrimidin-4-yl)- 3-m-tolyl-propane-1,2-diamine
49C
(S)-3-(2-Methoxy-phenyl)- N*1*-(2-pyridin-4-yl-5,6,7,8- tetrahydro-benzo[4,5]- thieno[2,3-d]pyrimidin-4-yl)- propane-1,2-diamine
50C
(S)-3-(4-Fluoro-phenyl)-N*1*- (2-pyridin-4-yl-5,6,7,8- tetrahydro-benzo[4,5]- thieno[2,3-d]pyrimidin-4-yl)- propane-1,2-diamine
51B
(S)-3-(2-Fluoro-phenyl)-N*1*- (2-pyridin-4-yl-5,6,7,8- tetrahydro-benzo[4,5]- thieno[2,3-d]pyrimidin-4-yl)- propane-1,2-diamine
52C
(R)-3-Naphthalen-1-yl-N*1*- (2-pyridin-4-yl-5,6,7,8- tetrahydro-benzo[4,5]- thieno[2,3-d]pyrimidin-4-yl)- propane-1,2-diamine
53B
(S)-N*1*-(2-Pyridin-4-yl- 5,6,7,8-tetrahydro-benzo- [4,5]thieno[2,3-d]pyrimidin- 4-yl)-3-o-tolyl-propane-1,2- diamine
54C
(S)-3-(3-Methoxy-phenyl)- N*1*-(2-pyridin-4-yl-5,6,7,8- tetrahydro-benzo[4,5]- thieno[2,3-d]pyrimidin-4-yl)- propane-1,2-diamine
55C
4-[(S)-2-Amino-3-(2-pyridin- 4-yl-5,6,7,8-tetrahydro- benzo[4,5]thieno[2,3-d]- pyrimidin-4-ylamino)propyl]- phenol
56C
(S)-3-Pyridin-4-yl-N*1*-(2- pyridin-4-yl-5,6,7,8-tetrahydro- benzo[4,5]thieno[2,3-d]- pyrimidin-4-yl)-propane-1,2- diamine
57B
(S)-3-Pyridin-3-yl-N*1*-(2- pyridin-4-yl-5,6,7,8-tetrahydro- benzo[4,5]thieno[2,3-d]- pyrimidin-4-yl)-propane-1,2- diamine
58C
(S)-3-Pyridin-2-yl-N*1*-(2- pyridin-4-yl-5,6,7,8-tetrahydro- benzo[4,5]thieno[2,3-d]- pyrimidin-4-yl)-propane-1,2- diamine
59B
(S)-N*1*-(2-Pyridin-4-yl- 5,6,7,8-tetrahydro-benzo- [4,5]thieno[2,3-d]pyrimidin- 4-yl)-3-thiazol-4-yl-propane- 1,2-diamine
60C
(S)-4,4-Dimethyl-N*1*-(2- pyridin-4-yl-5,6,7,8-tetrahydro- benzo[4,5]thieno[2,3-d]- pyrimidin-4-yl)-pentane-1,2- diamine
61C
(R)-3-Benzo[b]thiophen-3-yl- N*1*-(2-pyridin-4-yl-5,6,7,8- tetrahydro-benzo[4,5]thieno- [2,3-d]pyrimidin-4-yl)- propane-1,2-diamine
62C
(R)-1-Piperidin-2-ylmethyl- (2-pyridin-4-yl-5,6,7,8- tetrahydro-benzo[4,5]thieno- [2,3-d]pyrimidin-4-yl)-amine
63C
(S)-3-(1H-Indol-3-yl)-N*1*-(2- pyridin-4-yl-5,6,7,8-tetrahydro- benzo[4,5]thieno[2,3-d]- pyrimidin-4-yl)-propane-1,2- diamine
64D
(S)-3-(2-Methoxy-phenyl)- N*1*-(2-pyridin-4-yl-5,8- dihydro-6H-thiopyrano- [4′,3′:4,5]thieno[2,3-d]- pyrimidin-4-yl)-propane-1,2- diamine
65A
2-[(S)-2-Amino-3-(2-pyridin- 4-yl-5,6,7,8-tetrahydro-benzo- [4,5]thieno[2,3-d]pyrimidin-4- ylamino)-propyl]-phenol
66B
3-[(S)-2-Amino-3-(2-pyridin- 4-yl-5,6,7,8-tetrahydro-benzo- [4,5]thieno[2,3-d]pyrimidin-4- ylamino)-propyl]-phenol
67A*
(S)-3-Phenyl-N*1*-(2-pyridin- 4-yl-5,6,7,8-tetrahydro-benzo- [4,5]thieno[2,3-d]pyrimidin-4- yl)-propane-1,2-diamine
68C*
(S)-N*1*-(2-Pyridin-4-yl- 5,6,7,8-tetrahydro-benzo[4,5]- thieno[2,3-d]pyrimidin-4-yl)- butane-1,2-diamine
69B*
(S)-N*1*-(7-Methyl-2-pyridin- 4-yl-5,6,7,8-tetrahydro-benzo- [4,5]thieno[2,3-d]pyrimidin-4- yl)-3-phenyl-propane-1,2- diamine
70C
(R)-3-Phenyl-N*1*-(2-pyridin- 4-yl-6,7,8,9-tetrahydro-5H-10- thia-1,3-diaza-benzo[a]azulen- 4-yl)-propane-1,2-diamine
71C*
(R)-3-Phenyl-N*1*-(2-pyridin- 4-yl-5,6,7.8-tetrahydro-benzo- [4,5]thieno[2,3-d]pyrimidin-4- yl)-propane-1,2-diamine
72C
[4-((S)-2-Amino-3-phenyl- propylamino)-2-pyridin-4-yl- 5,8-dihydro-6H-pyrido- [4′,3′:4,5]thieno[2,3-d]- pyrimidin-7-yl]-phenyl- methanone
73C
[4-((R)-2-Amino-3-phenyl- propylamino)-2-pyridin-4-yl- 5,8-dihydro-6H-pyrido- [4′,3′:4,5]thieno[2,3-d]- pyrimidin-7-yl]-phenyl- methanone
74B*
4-((S)-2-Amino-3-phenyl- propylamino)-5-methyl-2- pyridin-4-yl-thieno[2,3-d]- pyrimidine-6-carboxylic acid amide
75C*
(S)-N*1*-(6-Isopropyl-2- pyridin-4-yl-thieno[2,3-d]- pyrimidin-4-yl)-3-phenyl- propane-1,2-diamine
76B*
(S)-3-Phenyl-N*1*-(2-pyridin- 4-yl-5,6,7,8,9,10-hexahydro- 11-thia-1,3-diaza-cycloocta[a]- inden-4-yl)-propane-1,2- diamine
77D
(S)-N*1*-(7,7-Dimethyl-2- pyridin-4-yl-5,6,7,8- tetrahydro-benzo[4,5]thieno- [2,3-d]pyrimidin-4-yl)-3- phenyl-propane-1,2-diamine
78C
(S)-3-Phenyl-N*1*-*-1,4- Dioxa-spiro[7.7]-(2-pyridin-4- yl-5,6,7,8-tetrahydro-benzo- [4,5]thieno[2,3-d]pyrimidin-4- yl)-propane-1,2-diamine
79B
(R)-3-Phcnyl-N*1*-*-1,4- Dioxa-spiro[7.7]-(2-pyridin-4- yl-5,6,7,8-tetrahydro-benzo- [4,5]thieno[2,3-d]pyrimidin- 4-yl)-propane-1,2-diamine
80B
(S)-3-Phenyl-N*1*-(2-pyridin- 4-yl-5,8-dihydro-6H- thiopyrano[4′,3′:4,5]thieno- [2,3-d]pyrimidin-4-yl)- propane-1,2-diamine
81C
(R)-3-Phenyl-N*1*-(2-pyridin- 4-yl-5,8-dihydro-6H- thiopyrano[4′,3′:4,5]thieno- [2,3-d]pyrimidin-4-yl)- propane-1,2-diamine
82C
(S)-3-Phcnyl-N*1*-(2-pyridin- 4-yl-5,8-dihydro-6H-pyrano- [4′,3′:4,5]thienol[2,3-d]- pyrimidin-4-yl)-propane-1,2- diamine
83D
(R)-3-Phenyl-N*1*-(2-pyridin- 4-yl-5,8-dihydro-6H-pyrano- [4′,3′:4,5]thieno[2,3-d]- pyrimidin-4-yl)-propane-1,2- diamine
84B*
N*1*-(2-Pyridin-4-yl-6,7,8,9- tetrahydro-5H-10-thia-1,3- diaza-benzo[a]azulen-4-yl)- ethane-1,2-diamine
85B*
4-Piperazin-1-yl-2-pyridin-4- yl-6,7,8,9-tetrahydro-5H-10- thia-1,3-diaza-benzo[a]azulene
86B*
4-[1,4]Diazepan-1-yl-2-pyridin- 4-yl-6,7,8,9-tetrahydro-5H-10- thia-1,3-diaza-benzo[a]azulene
87B*
(S)-3-Phenyl-N*1*-(2-pyridin- 4-yl-6,7,8,9-tetrahydro-5H-10- thia-1,3-diaza-benzo[a]azulen- 4-yl)-propane-1,2-diamine
88B*
(S)-N*1*-(2-Pyridin-4-yl- 6,7,8,9-tetrahydro-5H-10-thia- 1,3-diaza-benzo[a]azulen-4-yl)- propane-1,2-diamine
89B*
(R)-N*1*-(2-Pyridin-4-yl- 6,7,8,9-tetrahydro-5H-10-thia- 1,3-diaza-benzo[a]azulen-4- yl)-propane-1,2-diamine
90C
4-((S)-2-Amino-3-phenyl- propylamino)-2-pyridin-4-yl- 5,8-dihydro-6H-pyrido- [4′,3′:4,5]thieno[2,3-d]- pyrimidine-7-carboxylic acid tert-butyl ester
91C*
N*1*-(6-Mcthyl-5-phenyl-2- pyridin-4-yl-thieno[2,3-d]- pyrimidin-4-yl)-ethane-1,2- diamine
92C*
4-[1,4]Diazepan-1-yl-6-methyl- 5-phenyl-2-pyridin-4-yl- thieno[2,3-d]pyrimidine
93C*
5-(4-Bromo-phenyl)-4-[1,4]- diazepan-1-yl-2-pyridin-4-yl- thieno[2,3-d]pyrimidine
94A*
5-Methyl-4-pipcrazin-1-yl-2- pyridin-4-yl-thieno[2,3-d] pyrimidine
95B*
4-[1,4]Diazepan-1-yl-5-methyl- 2-pyridin-4-yl-thieno[2,3-d]- pyrimidine
96D
4-((S)-2-Amino-propylamino)- 2-pyridin-4-yl-5,8-dihydro-6H- pyrido[4′,3′:4,5]thieno[2,3-d]- pyrimidine-7-carboxylic acid tert-butyl ester
97C*
N*1*-[2-(3-Fluoro-pyridin-4- yl)-5,6,7,8-tetrahydro-benzo- [4,5]thieno[2,3-d]pyrimidin-4- yl]-ethane-1,2-diamine
98D*
N*1*-[2-(2-Fluoro-pyridin-4- yl)-5,6.7.8-tetrahydro-benzo- [4,5]thieno[2,3-d]pyrimidin- 4-yl]-ethane-1,2-diamine
99C*
(S)-N*1*-[2-(3-Fluoro-pyridin- 4-yl)-5,6,7,8-tetrahydro-benzo- [4,5]thieno[2,3-d]pyrimidin-4- yl]-propane-1,2-diamine
100C*
(R)-N*1*-[2-(3-Fluoro- pyridin-4-yl)-5,6,7,8- tetrahydro-benzo[4,5]- thieno[2,3-d]pyrimidin-4- yl]-propane-1,2-diamine
101C
(S)-N*1*-[2-(3-Fluoro-pyridin- 4-yl)-5,6,7,8-tetrahydro-benzo- [4,5]thieno[2,3-d]pyrimidin-4- yl]-3-phenyl-propane-1,2- diamine
102D
(S)-N*1*-[2-(3-Methoxy- pyridin-4-yl)-5,6,7,8- tetrahydro-benzo[4,5]thieno- [2,3-d]pyrimidin-4-yl]-3- phenyl-propane-1,2-diamine
103C
4-[4-((S)-2-Amino-3-phenyl- propylamino)-5,6,7,8- tetrahydro-benzo[4,5]thieno- [2,3-d]pyrimidin-2-yl]- pyridin-3-ol
104D
1-[4-(2-Amino-ethylamino)-2- pyridin-4-yl-5,8-dihydro-6H- pyrido[4′,3′:4,5]thieno[2,3-d]- pyrimidin-7-yl]-2,2-dimethyl- propan-1-one
105C
1-[4-(2-Amino-ethylamino)-2- pyridin-4-yl-5,8-dihydro-6H- pyrido[4′,3′:4,5]thieno[2,3-d]- pyrimidin-7-yl]-ethanone
106D
1-[4-(2-Amino-ethylamino)-2- pyridin-4-yl-5,8-dihydro-6H- pyrido[4′,3′:4,5]thieno[2,3-d]- pyrimidin-7-yl]-propan-1-one
107D
1-[4-(2-Amino-ethylamino)-2- pyridin-4-yl-5,8-dihydro-6H- pyrido[4′,3′:4,5]thieno[2,3-d]- pyrimidin-7-yl]-2-methyl- propan-1-one
108D
[4-(2-Amino-ethylamino)-2- pyridin-4-yl-5,8-dihydro-6H- pyrido[4′,3′:4,5]thieno[2,3-d]- pyrimidin-7-yl]-cyclopropyl- methanone
109D
[4-(2-Amino-ethylamino)-2- pyridin-4-yl-5,8-dihydro-6H- pyrido[4′,3′:4,5]thieno[2,3-d]- pyrimidin-7-yl]-cyclobutyl- methanone
110D
1-[4-(2-Amino-ethylamino)-2- pyridin-4-yl-5,8-dihydro-6H- pyrido[4′,3′:4,5]thieno[2,3-d]- pyrimidin-7-yl]-pentan-1-one
111D
1-[4-(2-Amino-ethylamino)-2- pyridin-4-yl-5,8-dihydro-6H- pyrido[4′,3′:4,5]thieno[2,3-d]- pyrimidin-7-yl]-2-dimethyl- amino-ethanone
112D
N*1*-(7-Ethyl-2-pyridin-4-yl- 5,6,7,8-tetrahydro-pyrido- [4′,3′:4,5]thieno[2,3-d]- pyrimidin-4-yl)-ethane-1,2- Diamine
113D
N*1*-(7-Methyl-2-pyridin-4- yl-5,6,7,8-tetrahydro-pyrido- [4′,3′:4,5]thieno[2,3-d]- pyrimidin-4-yl)-ethane-1,2- diamine
114D
N*1*-(7-Isobutyl-2-pyridin-4- yl-5,6,7,8-tetrahydro-pyrido- [4′,3′:4,5]thieno[2,3-d]- pyrimidin-4-yl)-ethane-1,2- diamine
115D*
4-[4-(4-Methyl-benzyl)- piperazin-1-yl]-2-pyridin-4- yl-5,6,7,8-tetrahydro-benzo- [4,5]thieno[2,3-d]pyrimidine
116D*
4-(4-Benzyl-piperazin-1-yl)-2- pyridin-4-yl-5,6,7,8-tetrahydro- benzo[4,5]thieno[2,3-d]- pyrimidine
117D*
4-[4-(4-Bromo-benzyl)- piperazin-1-yl]-2-pyridin-4- yl-5,6,7,8-tetrahydro-benzo- [4,5]thieno[2,3-d]pyrimidine
118C*
2-Pyridin-4-yl-4-(4-pyridin-4- ylmethyl-piperazin-1-yl)- 5,6,7,8-tetrahydro-benzo- [4,5]thieno[2,3-d]pyrimidine
119C*
4-(4-Ethyl-piperazin-1-yl)-2- pyridin-4-yl-5,6,7,8-tetrahydro- benzo[4,5]thieno[2,3-d]- pyrimidine
120D*
2-Pyridin-4-yl-4-(4-pyridin-2- ylmethyl-piperazin-1-yl)- 5,6,7,8-tetrahydro-benzo[4,5]- thieno[2,3-d]pyrimidine
121D*
2-Pyridin-4-yl-4-[4-(4-trifluoro- methyl-benzyl)-piperazin-1-yl]- 5,6,7,8-tetrahydro-benzo[4,5]- thieno[2,3-d]pyrimidine
122D*
4-[4-(4-Chloro-benzyl)- piperazin-1-yl]-2-pyridin- 4-yl-5,6,7,8-tetrahydro- benzo[4,5]thieno[2,3-d]- pyrimidine
123D*
4-[4-(2-Chloro-benzyl)- piperazin-1-yl]-2-pyridin- 4-yl-5,6,7,8-tetrahydro- benzo[4,5]thieno[2,3-d]- pyrimidine
124D*
4-[4-(3-Chloro-benzyl)- piperazin-1-yl]-2-pyridin-4- yl-5,6,7,8-tetrahydro-benzo- [4,5]thieno[2,3-d]pyrimidine
125C*
4-(4-Methyl-piperazin-1-yl)- 2-pyridin-4-yl-5,6,7,8- tetrahydro-benzo[4,5]- thieno[2,3-d]pyrimidine
126D*
3-[4-(2-Pyridin-4-yl-5,6,7,8- tetrahydro-benzo[4,5]thieno- [2,3-d]pyrimidin-4-yl)- piperazin-1-ylmethyl]-phenol
127D*
4-[4-(3-Bromo-benzyl)- piperazin-1-yl]-2-pyridin-4- yl-5,6,7,8-tetrahydro-benzo- [4,5]thieno[2,3-d]pyrimidine
128D*
4-[4-(6-Bromo-pyridin-3- ylmethyl)piperazin-1-yl]-2- pyridin-4-yl-5,6,7,8- tetrahydro-benzo[4,5]thieno- [2,3-d]-pyrimidine
129D*
4-(4-Butyl-piperazin-1-yl)-2- pyridin-4-yl-5,6,7,8- tetrahydro-benzo[4,5]thieno- [2,3-d]pyrimidine
130D*
2-Pyridin-4-yl-4-(4-pyridin-3- ylmethyl-piperazin-1-yl)- 5,6,7,8-tetrahydro-benzo[4,5]- thieno[2,3-d]pyrimidine
131D*
4-[4-(3-Bromo-pyridin-4- ylmethyl)-piperazin-1-yl]-2- pyridin-4-yl-5,6,7,8-tetrahydro- benzo[4,5]thieno[2,3-d]- pyrimidine
132D*
4-(4-Phenethyl-piperazin-1- yl)-2-pyridin-4-yl-5,6,7,8- tetrahydro-benzo[4,5]- thieno[2,3-d]pyrimidine
133D*
4-(4-Propyl-piperazin-1-yl)-2- pyridin-4-yl-5,6,7,8-tetrahydro- benzo[4,5]thieno[2,3-d]- pyrimidine
134D*
4-(4-Isobulyl-piperazin-1- yl)-2-pyridin-4-yl-5,6,7,8- tetrahydro-benzo[4,5]- thieno[2,3-d]pyrimidine
135C*
Dimethyl-[2-(2-pyridin-4-yl- 5,6,7,8-tetrahydro-benzo- [4,5]thieno[2,3-d]pyrimidin-4- yloxy)-ethyl]-amine
136B*
2-(2-Pyridin-4-yl-5,6,7,8- tetrahydro-benzo[4,5]- thieno[2,3-d]pyrimidin-4- yloxy)-ethylamine
137C*
Methyl-[2-(2-pyridin-4-yl- 5,6,7,8-tetrahydro-benzo- [4,5]thieno[2,3-d]pyrimidin- 4-yloxy)-ethyl]-amine
138C*
(S)-3-Methyl-1-(2-pyridin-4- yl-5,6,7,8-tetrahydro-benzo- [4,5]thieno[2,3-d]pyrimidin- yloxymethyl)-butylamine
139C
2-Pyridin-4-yl-4-((R)- pyrrolidin-3-yloxy)-5,6,7,8- tetrahydro-benzo[4,5]- thieno[2,3-d]pyrimidine
140C*
2-Pyridin-4-yl-4-((S)- pyrrolidin-3-yloxy)-5,6,7,8- tetrahydro-benzo[4,5]- thieno[2,3-d]pyrimidine
141C*
4-(Piperidin-3-yloxy)-2- pyridin-4-yl-5,6,7,8- tetrahydro-benzo[4,5]- thieno[2,3-d]pyrimidine
142D*
(R)-2-Phenyl-1-(2-pyridin-4- yl-5,6,7,8-tetrahydro-benzo- [4,5]thieno[2,3-d]pyrimidin- 4-yloxymethyl)-ethylamine
143B*
(S)-2-Phenyl-1-(2-pyridin-4- yl-5,6,7,8-tetrahydro-benzo- [4,5]thieno[2,3-d]pyrimidin- 4-yloxymethyl)-ethylamine
144B*
(S)-1-Methyl-2-(2-pyridin-4- yl-5,6,7,8-tetrahydro-benzo- [4,5]thieno[2,3-d]pyrimidin- 4-yloxy)-ethylamine
145C*
(R)-1-Methyl-2-(2-pyridin-4- yl-5,6,7,8-tetrahydro-benzo- [4,5]thieno[2,3-d]pyrimidin- 4-yloxy)-ethylamine
146C*
(R)-3-Methyl-1-(2-pyridin-4- yl-5,6,7,8-tetrahydro-benzo- [4,5]thieno[2,3-d]pyrimidin- 4-yloxymethyl)-butylamine
147D*
(R)-1-Phenyl-2-(2-pyridin-4- yl-5,6,7,8-tetrahydro-benzo- [4,5]thieno[2,3-d]pyrimidin- 4-yloxy)-ethylamine
148D*
(R)-2-Methyl-1-(2-pyridin-4- yl-5,6,7,8-tetrahydro-benzo- [4,5]thieno[2,3-d]pyrimidin- 4-yloxymethyl)-propylamine
149C*
(R)-1-(2-Pyridin-4-yl-5,6,7,8- tetrahydro-benzo[4,5]- thieno[2,3-d]pyrimidin-4- yloxymethyl)-propylamine
150C*
(S)-1-(2-Pyridin-4-yl-5,6,7,8- tetrahydro-benzo[4,5]- thieno[2,3-d]pyrimidin-4- yloxymethyl)-propylamine
151C*
(S)-2-Methyl-1-(2-pyridin-4- yl-5,6,7,8-tetrahydro-benzo- [4,5]thieno[2,3-d]pyrimidin- 4-yloxymethyl)-propylamine
152C*
4-(Azelidin-3-yloxy)-2-pyridin- 4-yl-5,6,7,8-tetrahydro-benzo- [4,5]thieno[2,3-d]pyrimidine
153C*
2-Pyridin-4-yl-4-((R)-1- pyrrolidin-2-ylmethoxy)- 5,6,7,8-tetrahydro-benzo- [4,5]thieno[2,3-d]pyrimidine
154C*
2-Pyridin-4-yl-4-((S)-1- pyrrolidin-2-ylmethoxy)- 5,6,7,8-tetrahydro-benzo- [4,5]thieno[2,3-d]pyrimidine
155C*
(S)-1-Phenyl-2-(2-pyridin-4- yl-5,6,7,8-tetrahydro-benzo- [4,5]thieno[2,3-d]pyrimidin- 4-yloxy)-ethylamine
156C*
(S)-1-Cyclohexyl-2-(2-pyridin- 4-yl-5,6,7,8-tetrahydro-benzo- [4,5]thieno[2,3-d]pyrimidin-4- yloxy)-ethylamine
157C*
(S)-2-Cyclohexyl-1-(2-pyridin- 4-yl-5,6,7,8-tetrahydro-benzo- [4,5]thieno[2,3-d]pyrimidin-4- yloxymethyl)-ethylamine
158D*
(S)-2-(1H-Indol-3-yl)-1-(2- pyridin-4-yl-5,6,7,8-tetrahydro- benzo[4,5]thieno[2,3-d]- pyrimidin-4-yloxymethyl)- ethylamine
159C*
(S)-1-(4-Methoxy-benzyl)-2- (2-pyridin-4-yl-5,6,7,8- tetrahydro-benzo[4,5]- thieno[2,3-d]pyrimidin-4- yloxy)-ethylamine
160D*
(S)-1-Naphthalen-2-ylmethyl- 2-(2-pyridin-4-yl-5,6,7,8- tetrahydro-benzo[4,5]thieno- [2,3-d]pyrimidin-4-yloxy)- ethylamine
161C*
(S)-1-Naphthalen-1-ylmethyl- 2-(2-pyridin-4-yl-5,6,7,8- tetrahydro-benzo[4,5]- thieno[2,3-d]pyrimidin-4- yloxy)-ethylamine
162D*
(S)-1-(4-Fluoro-benzyl)-2-(2- pyridin-4-yl-5,6,7,8-tetrahydro- benzo[4,5]thieno[2,3-d]- pyrimidin-4-yloxy)-ethylamine
163C*
(S)-1-(3-Fluoro-benzyl)-2-(2- pyridin-4-yl-5,6,7,8-tetrahydro- benzo[4,5]thieno[2,3-d]- pyrimidin-4-yloxy)-ethylamine
164C*
(S)-1-(2-Fluoro-benzyl)-2-(2- pyridin-4-yl-5,6,7,8-tetrahydro- benzo[4,5]thieno[2,3-d]- pyrimidin-4-yloxy)-ethylamine
165C*
(S)-1-(3-Methyl-benzyl)-2-(2- pyridin-4-yl-5,6,7,8-tetrahydro- benzo[4,5]thieno[2,3-d]- pyrimidin-4-yloxy)-ethylamine
166C*
(S)-1-(4-Methyl-benzyl)-2-(2- pyridin-4-yl-5,6,7,8-tetrahydro- benzo[4,5]thieno[2,3-d]- pyrimidin-4-yloxy)-ethylamine
167D*
(R)-3-Phenyl-1-(2-pyridin-4- yl-5,6,7,8-tetrahydro-benzo- [4,5]thieno[2,3-d]pyrimidin-4- yloxymethyl)-propylamine
168C*
(S)-2-(2-Pyridin-4-yl-5,6,7,8- tetrahydro-benzo[4,5]- thieno[2,3-d]pyrimidin-4- yloxy)-1-(thiophen-2-yl- methyl-ethylamine
169D*
(R)-1-(4-Methoxy-benzyl)-2- (2-pyridin-4-yl-5,6,7,8- tetrahydro-benzo[4,5]- thieno[2,3-d]pyrimidin-4- yloxy)-ethylamine
170D*
(R)-2-(2-Pyridin-4-yl-5,6,7,8- tetrahydro-benzo[4,5]thieno- [2,3-d]pyrimidin-4-yloxy)-1- thiophen-2-ylmethyl- ethylamine
171C*
(S)-1-(4-Bromo-benzyl)-2-(2- pyridin-4-yl-5,6,7,8-tetrahydro- benzo[4,5]thieno[2,3-d]- pyrimidin-4-yloxy)-ethylamine
172D*
(R)-1-Naphthalen-2-ylmethyl- 2-(2-pyridin-4-yl-5,6,7,8- tetrahydro-benzo[4,5]- thieno[2,3-d]pyrimidin-4- yloxy)-ethylamine
173C*
(R)-1-Naphthalen-1-ylmethyl- 2-(2-pyridin-4-yl-5,6,7,8- tetrahydro-benzo[4,5]thieno- [2,3-d]pyrimidin-4-yloxy)- ethylamine
174C*
(S)-1-(2-Methyl-benzyl)-2-(2- pyridin-4-yl-5,6,7,8-tetrahydro- benzo[4,5]thieno[2,3-d]- pyrimidin-4-yloxy)-ethylamine
175D*
(S)-1-(1H-Imidazol-4- ylmethyl)-2-(2-pyridin-4-yl- 5,6,7,8-tetrahydro-benzo- [4,5]thieno[2,3-d]pyrimidin- 4-yloxy)-ethylamine
176D*
(R)-1-Benzo[b]thiophen-3- ylmethyl-2-(2-pyridin-4-yl- 5,6,7,8-tetrahydro-benzo- [4,5]thieno[2,3-d]pyrimidin- 4-yloxy)-ethylamine
177D*
(S)-1-Benzo[b]thiophen-3- ylmethyl-2-(2-pyridin-4-yl- 5,6,7,8-tetrahydro-benzo- [4,5]thieno[2,3-d]pyrimidin- 4-yloxy)-ethylamine
178C*
4-((R)-1-Piperidin-2- ylmethoxy)-2-pyridin-4- yl-5,6,7,8-tetrahydro- benzo[4,5]thieno[2,3-d]- pyrimidine
179D*
4-((S)-1-Piperidin-2- ylmethoxy)-2-pyridin-4- yl-5,6,7,8-tetrahydro- benzo[4,5]thieno[2,3-d]- pyrimidine
180C*
(S)-1-(3-Methoxy-benzyl)-2- (2-pyridin-4-yl-5,6,7,8- tetrahydro-benzo[4,5]- thieno[2,3-d]pyrimidin-4- yloxy)-ethylamine
181B*
N*1*-[2-(1H-Pyrazol-4-yl)- 5,6,7,8-tetrahydro-benzo- [4,5]thieno[2,3-d]pyrimidin- 4-yl]-ethane-1,2-diamine
182B*
N*1*-[2-(3,5-Dimethyl-1H- pyrazol-4-yl)-5,6,7,8- tetrahydro-benzo[4,5]- thieno[2,3-d]pyrimidin-4- yl]-ethane-1,2-diamine
183B*
(S)-3-Phenyl-N*1*-[2-(1H- pyrazol-4-yl)-5,6,7,8- tetrahydro-benzo[4,5]- thieno[2,3-d]pyrimidin-4- yl]-propane-1,2-diamine
184C*
(S)-N*1*-[2-(3,5-Dimethyl- 1H-pyrazol-4-yl)-5,6,7,8- tetrahydro-benzo[4,5]- thieno[2,3-d]pyrimidin-4- yl]-3-phenyl-propane-1,2- diamine
185B*
4-Piperazin-1-yl-2-(1H- pyrazol-4-yl)-5,6,7,8- tetrahydro-benzo[4,5]- thieno[2,3-d]pyrimidine
186B*
4-[1,4]Diazepan-1-yl-2-(1H- pyrazol-4-yl)-5,6,7,8- tetrahydro-benzo[4,5]- thieno[2,3-d]pyrimidine
187B*
(S)-N*1*-[2-(1H-Pyrazol-4- yl)-5,6,7,8-tetrahydro-benzo- [4,5]thieno[2,3-d]pyrimidin- yl]-propane-1,2-diamine
188C*
(R)-N*1*-[2-(1H-Pyrazol-4- yl)-5,6,7,8-tetrahydro-benzo- [4,5]thieno[2,3-d]pyrimidin-4- yl]-propane-1,2-diamine
189B*
[2-(1H-Pyrazol-4-yl)-5,6,7,8- (tetrahydro-benzo[4,5]thieno- [2,3-d]pyrimidin-4-yl]-(R)- pyrrolidin-3-yl-amine
190B*
2-(3,5-Dimethyl-1H-pyrazol]- 4-yl)-4-piperazin-1-yl-5,6,7,8- tetrahydro-benzo[4,5]thieno- [2,3-d]pyrimidine
191B*
4-[1,4]Diazexpan-1-yl-2-(3,5- dimethyl-1H-pyrazol-4-yl)- 5,6,7,8-tetrahydro-benzo- [4,5]thieno[2,3-d]pyrimidine
192C*
(S)-N*1*-[2-(3,5-Dimethyl- 1H-pyrazol-4-yl)-5,6,7,8- tetrahydro-benzo[4,5]- thieno[2,3-d]pyrimidin-4- yl]-propane-1,2-diamine
193D*
(R)-N*1*-[2-(3,5-Dimethyl- 1H-pyrazol-4-yl)-5,6,7,8- tetrahydro-benzo[4,5]thieno- [2,3-d]pyrimidin-4-yl]- propane-1,2-diamine
194B*
[2-(3,5-Dimethyl-1H-pyrazol- 4-yl)-5,6,7,8-tetrahydro-benzo- [4,5]thieno[2,3-d]pyrimidin-4- yl]-(R)-pyrrolidin-3-yl-amine
195>60 μM
N*1*-[2-(1-Methyl-1H- pyrazol-4-yl)-5,6,7,8- tetrahydro-benzo[4,5]- thieno[2,3-d]pyrimidin-4- yl]-ethane-1,2-diamine
196C
4-((S)-3-Benzyl-piperazin-1- yl)-2-(1H-pyrazol-4-yl)- 5,6,7,8-tetrahydro-benzo- [4,5]thieno[2,3-d]pyrimidine
300A
(S)-N*1*-(7-Bromo-6-methyl- 2-pyridin-4-yl-thieno[3,2- d]pyrimidin-4-yl)-3-phenyl- propane-1,2-diamine
301C*
6-Phenyl-4-piperazin-1-yl-2- pyridin-4-yl-thieno[3,2-d]- pyrimidine
302A*
(S)-N*1*-(7-Methyl-2-pyridin- 4-yl-thieno[3,2-d]pyrimidin-4- yl)-3-phenyl-propane-1,2- diamine
303D
(S)-N*1*-(7-Bromo-6-tert- butyl-2-pyridin-4-yl-thieno- [3,2-d]pyrimidin-4-yl)-3-(2- methoxy-phenyl)-propane- 1,2-diamine
304A
(S)-N*1*-[7-Bromo-2-(4- methyl-thiazol-5-yl)-thieno- [3,2-d]pyrimidin-4-yl]-3- phenyl-propane-1,2-diamine
305B
(S)-N*1*-(7-Bromo-2-pyridin- 4-yl-thieno[3,2-d]pyrimidin- 4-yl)-propane-1,2-diamine
306A
(S)-N*1*-(7-Chloro-2-pyridin- 4-yl-thieno[3,2-d]pyrimidin-4- yl)-3-phenyl-propane-1,2- diamine
307D*
(S)-N*1*-(6-tert-Butyl-2- pyridin-4-yl-thieno[3,2-d]- pyrimidin-4-yl)-propane-1,2- diamine
308D*
(R)-N*1*-(6-tert-Butyl-2- pyridin-4-yl-thieno[3,2-d]- pyrimidin-4-yl)-propane-1,2- diamine
309C
N*1*-(6,7-Dimethyl-2-pyridin- 4-yl-thieno[3,2-d]pyrimidin-4- yl)-ethane-1,2-diamine
310C
N*1*-[7-(4-Bromo-phenyl)-2- pyridin-4-yl-thieno[3,2-d]- pyrimidin-4-yl]-ethane-1,2- diamine
311D*
N*1*-(6-tert-Butyl-2-pyridin- 4-yl-thieno[3,2-d]pyrimidin- 4-yl)-ethane-1,2-diamine
312C*
(7-Methyl-2-pyridin-4-yl- thieno[3,2-d]pyrimidin-4-yl)- (R)-pyrrolidin-3-yl-amine
313D*
N*1*-(6-Phenyl-2-pyridin-4- yl-thieno[3,2-d]pyrimidin-4- yl)-ethane-1,2-diamine
314B
(S)-3-Phenyl-N*1*-(2-pyridin- 4-yl-thieno[3,2-d]pyrimidin- 4-yl)-propane-1,2-diamine
315D
((3S,4S)-1-Benzyl-4-fluoro- pyrrolidin-3-yl)-(2-pyridin-4- yl-thieno[3,2-d]pyrimidin-4- yl)-amine
316C
(R)-Piperidin-3-yl-(2-pyridin- 4-yl-thieno[3,2-d]pyrimidin- 4-yl)-amine
317C
(2-Pyridin-4-yl-thieno[3,2-d]- pyrimidin-4-yl)-(R)-pyrrolidin- 3-yl-amine
318D
(R)-1-(2-Pyridin-4-yl-thieno- [3,2-d]pyrimidin-4-yl)- pyrrolidin-3-ylamine
319C
(3S,4S)-4-(2-Pyridin-4-yl- thieno[3,2-d]pyrimidin-4- ylamino)-pyrrolidin-3-ol
320D
2-[(R)-3-(2-Pyridin-4-yl- thieno[3,2-d]pyrimidin-4- ylamino)-pyrrolidin-1-yl]- acetamide
321D
((3S,4R)-4-Fluoro-pyrrolidin- 3-yl)-(2-pyridin-4-yl-thieno- [3,2-d]pyrimidin-4-yl)-amine
322C
[2-(3-Chloro-pyridin-4-yl)- thieno[3,2-d]pyrimidin-4-yl]- (R)-pyrrolidin-3-yl-amine
323C
(S)-N*1*-[2-(3-Chloro-pyridin- 4-yl)-thieno[3,2-d]pyrimidin- 4-yl]-3-phenyl-propane-1,2- diamine
324D
(S)-N*1*-(6-tert-Butyl-2- pyridin-4-yl-thieno[3,2-d]- pyrimidin-4-yl)-3-phenyl- propane-1,2-diamine
325B
(S)-N*1*-(6,7-Dimethyl-2- pyridin-4-yl-thieno[3,2-d]- pyrimidin-4-yl)-3-phenyl- propane-1,2-diamine
326C
(S)-N*1*-[7-(4-Bromo- phenyl)-2-pyridin-4-yl- thieno[3,2-d]-pyrimidin-4- yl]-3-phenyl-propane-1,2- diamine
327C
(R)-N*1*-[7-(4-Bromo- phenyl)-2-pyridin-4-yl- thieno[3,2-d]pyrimidin-4- yl]-3-phenyl-propane-1,2- diamine
328B
(7-Bromo-6-methyl-2-pyridin- 4-yl-thieno[3,2-d]pyrimidin- 4-yl)-(R)-pyrrolidin-3-yl- amine
329C
(R)-N*1*-(7-Bromo-6-methyl- 2-pyridin-4-yl-thieno[3,2-d]- pyrimidin-4-yl)-3-phenyl- propane-1,2-diamine
330C
(R)-N*1*-(7-Bromo-6-methyl- 2-pyridin-4-yl-thieno[3,2-d]- pyrimidin-4-yl)-propane-1,2- diamine
331C
(S)-N*1*-(7-Bromo-6-methyl- 2-pyridin-4-yl-thieno[3,2-d]- pyrimidin-4-yl)-propane-1,2- diamine
332C
(7-Bromo-6-methyl-2-pyridin- 4-yl-thieno[3.2-d]pyrimidin- 4-yl)-(S)-pyrrolidin-3-yl- amine
333D
N*1*-(7-Bromo-6-tert-butyl- 2-pyridin-4-yl-thieno[3,2-d]- pyrimidin-4-yl)-cthane-1,2- diamine
334C
(S)-N*1*-(7-Bromo-6-tert- butyl-2-pyridin-4-yl-thieno- [3,2-d]pyrimidin-4-yl)-3- phenyl-propane-1,2-diamine
335D
(R)-N*1*-(7-Bromo-6-tert- butyl-2-pyridin-4-yl-thieno- [3,2-d]pyrimidin-4-yl)-3- phenyl-propane-1,2-diamine
336A
(S)-N*1*-(7-Bromo-2-pyridin- 4-yl-thieno[3,2-d]pyrimidin- 4-yl)-3-phenyl-propane-1,2- diamine
337B
(S)-N*1*-(6-Bromo-7-methyl- 2-pyridin-4-yl-thieno[3,2-d]- pyrimidin-4-yl)-3-phenyl- propane-1,2-diamine
338D
2-(7-Bromo-2-pyridin-4-yl- thieno[3,2-d]pyrimidin-4- ylamino)-acetamide
339D
N′-(7-Bromo-2-pyridin-4-yl- thieno[3,2-d]pyrimidin-4-yl)- N,N-dimethyl-ethane-1,2- diamine
340B
(6-Bromo-7-methyl-2-pyridin- 4-yl-thieno[3,2-d]pyrimidin-4- yl)-(R)-pyrrolidin-3-yl-amine
341D
(7-Bromo-2-pyridin-4-yl- thieno[3,2-d]pyrimidin-4-yl)- (S)-1-pyrrolidin-2-ylmethyl- amine
342D
(7-Bromo-2-pyridin-4-yl- thieno[3,2-d]pyrimidin-4-yl)- (R)-1-pyrrolidin-2-ylmethyl- amine
343B
(7-Bromo-2-pyridin-4-yl- thieno[3,2-d]pyrimidin-4-yl)- (R)-piperidin-3-yl-amine
344C
(7-Bromo-2-pyridin-4-yl- thieno[3,2-d]pyrimidin-4-yl)- (S)-pyrrolidin-3-yl-amine
345C
N-(7-Bromo-2-pyridin-4-yl- thieno[3,2-d]pyrimidin-4-yl)- N′-methyl-ethane-1,2-diamine
346C
(S)-N*1*-(7-Bromo-2-pyridin- 4-yl-thieno[3,2-d]pyrimidin-4- yl)-4-methyl-pentane-1,2- diamine
347B
(S)-N*1*-(7-Bromo-2-pyridin- 4-yl-thieno[3,2-d]pyrimidin- 4-yl)-3-methyl-butane-1,2- diamine
348B
(S)-N*1*-(7-Bromo-2-pyridin- 4-yl-thieno[3,2-d]pyrimidin- 4-yl)-3-cyclohexyl-propane- 1,2-diamine
349B
N*1*-(7-Bromo-2-pyridin-4- yl-thieno[3,2-d]pyrimidin-4- yl)-ethane-1,2-diamine
350B
7-Bromo-4-piperazin-1-yl-2- pyridin-4-yl-thieno[3,2-d]- pyrimidine
351A
(7-Bromo-2-pyridin-4-yl- thieno[3,2-d]pyrimidin-4-yl)- (R)-pyrrolidin-3-yl-amine
352C
[7-Bromo-2-(3-fluoro-pyridin- 4-yl)-thieno[3,2-d]pyrimidin- 4-yl]-(R)-pyrrolidin-3-yl- amine
353D
(S)-N*1*-[2-(3-Fluoro-pyridin- 4-yl)-thieno[3,2-d]pyrimidin- 4-yl]-propane-1,2-diamine
354D
[2-(3-Fluoro-pyridin-4-yl)- thieno[3,2-d]pyrimidin-4-yl]- (R)-pyrrolidin-3-yl-amine
355C
(S)-N*1*-[2-(3-Fluoro-pyridin- 4-yl)-thieno[3,2-d]pyrimidin- 4-yl]-3-phenyl-propane-1,2- diamine
356D*
6-(4-tert-Butyl-phenyl)-4- [1,4]diazepan-1-yl-2-pyridin- 4-yl-thieno[3,2-d]pyrimidine
357D
6-(4-tert-Butyl-phenyl)-4- piperazin-1-yl-2-pyridin-4-yl- thieno[3,2-d]pyrimidine
358D*
(R)-N*1*-[6-(4-tert-Butyl- phenyl)-2-pyridin-4-yl- thieno[3,2-d]pyrimidin-4-yl]- propane-1,2-diamine
359D*
(S)-N*1*-[6-(4-tert-Butyl- phenyl)-2-pyridin-4-yl- thieno[3,2-d]pyrimidin-4-yl]- propane-1,2-diamine
360D*
N*1*-[6-(4-tert-Butyl-phenyl)- 2-pyridin-4-yl-thieno[3,2-d]- pyrimidin-4-yl]-ethane-1,2- diamine
361B*
(S)-N*1*-(7-Methyl-2-pyridin- 4-yl-thieno[3,2-d]pyrimidin-4- yl)-propane-1,2-diamine
362B*
4-[1,4]Diazepan-1-yl-7-methyl- 2-pyridin-4-yl-thieno[3,2-d]- pyrimidine
363B*
7-Methyl-4-piperazin-1-yl-2- pyridin-4-yl-thieno[3,2-d]- pyrimidine
364C*
(7-Methyl-2-pyridin-4-yl- thieno[3,2-d]pyrimidin-4-yl)- (S)-pyrrolidin-3-yl-amine
365C*
N*1*-Methyl-N*1*-(7-methyl- 2-pyridin-4-yl-thieno[3,2-d]- pyrimidin-4-yl)-ethane-1,2- diamine
366D*
(R)-N*1*-(6-Phenyl-2-pyridin- 4-yl-thieno[3,2-d]pyrimidin-4- yl)-propane-1,2-diamine
367D*
(S)-N*1*-(6-Phenyl-2-pyridin- 4-yl-thieno[3,2-d]pyrimidin-4- yl)-propane-1,2-diamine
368C*
4-[1,4]Diazepan-1-yl-6-phenyl- 2-pyridin-4-yl-thieno[3,2-d]- pyrimidine
369C*
(R)-N*1*-(7-Methyl-2-pyridin- 4-yl-thieno[3,2-d]pyrimidin-4- yl)-propane-1,2-diamine
370B*
N*1*-(7-Methyl-2-pyridin-4- yl-thieno[3,2-d]pyrimidin-4- yl)-ethane-1,2-diamine
371B*
9-Chloro-4-[1,4]diazepan-1-yl- 2-pyridin-4-yl-benzo[4,5]- thieno[3,2-d]pyrimidine
372B*
(S)-N*1*-(9-Chloro-2-pyridin- 4-yl-benzo[4,5]thieno[3,2-d]- pyrimidin-4-yl)-3-phenyl- propane-1,2-diamine
373B*
(S)-N*1*-(9-Chloro-2-pyridin- 4-yl-benzo[4,5]thieno[3,2-d]- pyrimidin-4-yl)-propane-1,2- diamine
374B*
(R)-N*1*-(9-Chloro-2-pyridin- 4-yl-benzo[4,5]thieno[3,2-d]- pyrimidin-4-yl)-propane-1,2- diamine
375C*
N*1*-(2-Pyridin-4-yl-pyrido- [3′,2′:4,5]thieno[3,2-d]- pyrimidin-4-yl)-ethane-1,2- diamine
376D*
4-Piperazin-1-yl-2-pyridin-4- yl-pyrido[3′,2′:4,5]thieno[3,2- d]pyrimidine
377C*
4-[1,4]Diazepan-1-yl-2- pyridin-4-yl-pyrido[3′,2′:4,5]- thieno[3,2-d]pyrimidine
378C*
(S)-N*1*-(2-Pyridin-4-yl- pyrido[3′,2′:4,5]thieno[3,2-d]- pyrimidin-4-yl)-propane-1,2- diamine
379D*
(R)-N*1*-(2-Pyridin-4-yl- pyrido[3′,2′:4,5]thieno[3,2-d]- pyrimidin-4-yl)-propane-1,2- diamine
380C*
7,9-Dimethyl-4-piperazin-1- yl-2-pyridin-4-yl-pyrido- [3′,2′:4,5]thieno[3,2-d]- pyrimidine
381C*
4-[1,4]Diazepan-1-yl-7,9- dimethyl-2-pyridin-4-yl- pyrido[3′,2′:4,5]thieno[3,2-d]- pyrimidine
382B*
(S)-N*1*-(7,9-Dimethyl-2- pyridin-4-yl-pyrido[3′,2′:4,5]- thieno[3,2-d]-pyrimidin-4-yl)- propane-1,2-diamine
383C*
(R)-N*1*-(7,9-Dimethyl-2- pyridin-4-yl-pyrido-[3′,2′:4,5]- thieno[3,2-d]-pyrimidin-4-yl)- propane-1,2-diamine
384C*
(9-Chloro-2-pyridin-4-yl- benzo[4,5]thieno[3,2-d]- pyrimidin-4-yl)-(R)- pyrrolidin-3-yl-amine
385C*
N*1*-(9-Chloro-2-pyridin-4- yl-benzo[4,5]thieno[3,2-d]- pyrimidin-4-yl)-N*1*-methyl- ethane-1,2-diamine
386B*
N*1*-(9-Chloro-2-pyridin-4- yl-benzo[4,5]thieno[3,2-d]- pyrimidin-4-yl)-ethane-1,2- diamine
387B*
9-Chloro-4-piperazin-1-yl-2- pyridin-4-yl-benzo[4,5]thieno- [3,2-d]pyrimidine
388A
(S)-N*1*-[6-Methyl-7-(2H- pyrazol-3-yl)-2-pyridin-4-yl- thieno[3,2-d]pyrimidin-4-yl]- 3-phenyl-propane-1,2-diamine
389C
[7-Methyl-6-(2H-pyrazol-3- yl)-2-pyridin-4-yl-thieno- [3,2-d]pyrimidin-4-yl]-(R)- pyrrolidin-3-yl-amine
390A
(S)-3-Phenyl-N*1*-[7-(2H- pyraxol-3-yl)-2-pyridin-4-yl- thieno[3,2-d]pyrimidin-4-yl]- propane-1,2-diamine
391C
(S)-N*1*-[7-(2-Methyl-2H- pyrazol-3-yl)-2-pyridin-4-yl- thieno[3,2-d]pyrimidin-4-yl]- 3-phenyl-propane-1,2-diamine
392C
N*1*-[7-(3,5-Dimethyl- isoxazol-4-yl)-2-pyridin-4-yl- thieno[3,2-d]pyrimidin-4-yl]- 3-phenyl-propane-1,2-diamine
393B
(S)-3-Phenyl-N*1*-[7-(1H- pyrazol-4-yl)-2-pyridin-4-yl- thieno[3,2-d]pyrimidin-4-yl]- propane-1,2-diamine
394C
(S)-N*1*-[7-(Isobutyl-1H- pyrazol-4-yl)-2-pyridin-4-yl- thieno[3,2-d]pyrimidin-4-yl]- 3-phenyl-propane-1,2- diamine
395C
(S)-N*1*-[7-(4-Methyl- thiophen-2-yl)-2-pyridin-4- yl-thieno[3,2-d]pyrimidin- 4-yl]-3-phenyl-propane- 1,2-diamine
396B
(S)-N*1*-[7-(3-Methyl- thiophen-2-yl)-2-pyridin-4- yl-thieno[3,2-d]pyrimidin- 4-yl]-3-phenyl-propane- 1,2-diamine
397B
(S)-3-Phenyl-N*1*-[2-pyridin- 4-yl-7-(1H-pyrrol-2-yl)- thieno[3,2-d]pyrimidin-4- yl]-propane-1,2-diamine
398B
(S)-3-Phenyl-N*1*-[2-pyridin- 4-yl-7-(1H-pyrrol-3-yl)- thieno[3,2-d]pyrimidin-4-yl]- propane-1,2-diamine
399C
(S)-N*1*-{7-[(tert-Butyl- dimethyl-silanyl)-ethynyl]-2- pyridin-4-yl-thieno[3,2-d]- pyrimidin-4-yl}-3-phenyl- propane-1,2-diamine
400A
(S)-N*1*-[7-(3-Methoxy- prop-1-ynyl)-2-pyridin-4-yl- thieno[3,2-d]pyrimidin-4- yl]-3-phenyl-propane-1,2- diamine
401B
(S)-N*1*-(7-Pent-1-ynyl-2- pyridin-4-yl-thieno[3,2-d]- pyrimidin-4-yl)-3-phenyl- propane-1,2-diamine
402B
(S)-3-Phenyl-N*1*-(7- phenylethynyl-2-pyridin-4- yl-thieno[3,2-d]pyrimidin-4- yl)-propane-1,2-diamine
403A
[7-(2H-Pyrazol-3-yl)-2-pyridin- 4-yl-thieno[3,2-d]pyrimidin-4- yl]-(R)-pyrrolidin-3-yl-amine
404B
(S)-N*1*-[7-((E)-3-Methoxy- propenyl)-2-pyridin-4-yl- thieno[3,2-d]pyrimidin-4-yl]- 3-phenyl-propane-1,2-diamine
405A
(S)-N*1*-[7-((E)-2-Cyclo- propylvinyl)-2-pyridin-4-yl- thieno[3,2-d]pyrimidin-4- yl]-3-phenyl-propane-1,2- diamine
406C
(S)-N*1*-[7-((E)-3,3- Dimethyl-but-1-enyl)-2- pyridin-4-yl-thieno[3,2-d]- pyrimidin-4-yl]-3-phenyl- propane-1,2-diamine
407A
(S)-3-Phenyl-N*1*-[7-((Z)- propenyl)-2-pyridin-4-yl- thieno[3,2-d]pyrimidin-4-yl]- propane-1,2-diamine
408A
(S)-3-Phenyl-N*1*-(2-pyridin- 4-yl-7-vinyl-thieno[3,2-d]- pyrimidin-4-yl)-propane-1,2- diamine
409B
(S)-N*1*-[7-(4-Fluoro-phenyl)- 2-pyridin-4-yl-thieno[3,2-d]- pyrimidin-4-yl]-3-phenyl- propane-1,2-diamine
410C
(S)-3-Phenyl-N*1*-(2-pyridin- 4-yl-7-pyridin-3-yl-thieno[3,2- d]pyrimidin-4-yl)-propane-1,2- diamine
411C
(S)-N*1*-[7-(1-Methyl-1H- pyrazol-4-yl)-2-pyridin-4-yl- thieno[3,2-d]pyrimidin-4-yl]- 3-phenyl-propane-1,2-diamine
412C
(S)-N*1*-[7-(5-Methyl-furan- 2-yl)-2-pyridin-4-yl-thieno- [3,2-d]pyrimidin-4-yl]-3- phenyl-propane-1,2-diamine
413A
(S)-N*1*-(7-Cyclopropyl-2- pyridin-4-yl-thieno[3,2-d]- pyrimidin-4-yl)-3-phenyl- propane-1,2-diamine
414B
(R)-3-Phenyl-N*1*-[7-(1H- pyrazol-3-yl)-2-pyridin-4-yl- thieno[3,2-d]pyrimidin-4-yl]- propane-1,2-diamine
415C
(S)-N*1*-[7-(1-Methyl-1H- pyrazol-3-yl)-2-pyridin-4-yl- thieno[3,2-d]pyrimidin-4-yl]- 3-phenyl-propane-1,2-diamine
416A
(S)-N*1*-[2-(3-Fluoro-pyridin- 4-yl)-7-(1H-pyrazol-3-yl)- thieno[3,2-d]pyrimidin-4-yl]- 3-phenyl-propane-1,2-diamine
417B
(S)-3-Phenyl-N*1*-(7-phenyl- 2-pyridin-4-yl-thieno[3,2-d]- pyrimidin-4-yl)-propane-1,2- diamine
418B
(S)-N*1*-[7-(5-Cyclopropyl- 1H-pyrazol-3-yl)-2-pyridin-4- yl-thieno[3,2-d]pyrimidin-4- yl]-3-phenyl-propane-1,2- diamine
419B
(S)-N*1*-[2-(3-Fluoro-pyridin- 4-yl)-7-(1H-pyrrol-2-yl)- thieno[3,2-d]pyrimidin-4-yl]- 3-phenyl-propane-1,2-diamine
420B
(S)-N*1*-[2-(3-Fluoro-pyridin- 4-yl)-7-(1H-pyrrol-3-yl)- thieno[3,2-d]pyrimidin-4-yl]- 3-phenyl-propane-1,2-diamine
421C
(S)-N*1*-[2-(3-Fluoro-pyridin- 4-yl)-7-(5-trifluoromethyl-2H- pyrazol-3-yl)-thieno[3,2-d]- pyrimidin-4-yl]-3-phenyl- propane-1,2-diamine
422C
(R)-N*1*-[2-(3-Fluoro-pyridin- 4-yl)-7-pyrimidin-5-yl-thieno- [3,2-d]pyrimidin-4-yl]-3- phenyl-propane-1,2-diamine
423C
(R)-N*1*-[2-(3-Fluoro-pyridin- 4-yl)-7-pyridin-3-yl-thieno[3,2- d]pyrimidin-4-yl]-3-phenyl- propane-1,2-diamine
424C
{4-[4-((R)-2-Amino-3-phenyl- propylamino)-2-(3-fluoro- pyridin-4-yl)-thieno[3,2-d]- pyrimidin-7-yl]-phenyl}- methanol
425C
{3-[4-((R)-2-Amino-3-phenyl- propylamino)-2-(3-fluoro- pyridin-4-yl)-thieno[3,2-d]- pyrimidin-7-yl]-phenyl}- methanol
426B
(R)-N*1*-[2-(3-Fluoro-pyridin- 4-yl)-7-furan-3-yl-thieno[3,2- d]pyrimidin-4-yl]-3-phenyl- propane-1,2-diamine
427C
(R)-N*1*-[7-(4-Aminomethyl- phenyl)-2-(3-fluoro-pyridin-4- yl)-thieno[3,2-d]pyrimidin-4- yl]-3-phenyl-propane-1,2- diamine
428C
(R)-N*1*-[7-(3,5-Dimethyl- isoxazol-4-yl)-2-(3-fluoro- pyridin-4-yl)-thieno[3,2- d]pyrimidin-4-yl]-3-phenyl- propane-1,2-diamine
429C
(R)-N*1*-[2-(3-Fluoro-pyridin- 4-yl)-7-pyridin-4-yl-thieno- [3,2-d]pyrimidin-4-yl]-3- phenyl-propane-1,2-diamine
430C
(R)-N*1*-[7-(4-Fluoro-phenyl)- 2-(3-fluoro-pyridin-4-yl)- thieno[3,2-d]pyrimidin-4-yl]- 3-phenyl-propane-1,2-diamine
431C
(R)-N*1*-[2-(3-Fluoro-pyridin- 4-yl)-7-thiophen-3-yl-thieno- [3,2-d]pyrimidin-4-yl]-3- phenyl-propane-1,2-diamine
432B
(R)-N*1*-[2-(3-Fluoro-pyridin- 4-yl)-7-furan-2-yl-thieno[3,2- d]pyrimidin-4-yl]-3-phenyl- propane-1,2-diamine
433C
(S)-N*1*-[2-(3-Fluoro-pyridin- yl)-7-o-tolyl-thieno[3,2-d]- pyrimidin-4-yl]-3-phenyl- propane-1,2-diamine
434C
(S)-N*1*-[2-(3-Fluoro-pyridin- 4-yl)-7-phenyl-thieno[3,2-d]- pyrimidin-4-yl]-3-phenyl- propane-1,2-diamine
435C
S)-N*1*-[7-(4-Aminomethyl- furan-2-yl)-2-(3-fluoro-pyridin- 4-yl)-thieno[3,2-d]pyrimidin-4- yl]-3-phenyl-propane-1,2- diamine
436D
(S)-N*1*-[6-tert-Butyl-7-(3- fluoro-phenyl)-2-pyridin-4-yl- thieno[3,2-d]pyrimidin-4-yl]-3- phenyl-propane-1,2-diamine
437C
(S)-N*1*-[6-tert-Butyl-7-(1H- pyrazol-4-yl)-2-pyridin-4-yl- thieno[3,2-d]pyrimidin-4-yl]- 3-phenyl-propane-1,2-diamine
438C
(S)-N*1*-[7-(6-Fluoro-pyridin- 3-yl)-6-methyl-2-pyridin-4-yl- thieno[3,2-d]pyrimidin-4-yl]- 3-phenyl-propane-1,2-diamine
439D
(S)-N*1*-[7-(4-Methoxy- pyridin-3-yl)-6-methyl-2- pyridin-4-yl-thieno[3,2-d]- pyrimidin-4-yl]-3-phenyl- propane-1,2-diamine
440D
(S)-N*1*-[7-(2-Isopropoxy-6- methoxy-phenyl)-6-methyl-2- pyridin-4-yl-thieno[3,2-d]- pyrimidin-4-yl]-3-phenyl- propane-1,2-diamine
441D
(S)-N*1*-[6-tert-Butyl-7-(3- methoxy-phenyl)-2-pyridin-4- yl-thieno[3,2-d]pyrimidin-4- yl]-3-phenyl-propane-1,2- diamine
442D
(S)-N*1*-[6-tert-Butyl-7-(4- fluoro-phenyl)-2-pyridin-4-yl- thieno[3,2-d]pyrimidin-4-yl]-3- phenyl-propane-1,2-diamine
443D
(S)-N*1*-[6-tert-Butyl-7-(6- fluoro-pyridin-3-yl)-2-pyridin- 4-yl-thieno[3,2-d]pyrimidin- 4-yl]-3-phenyl-propane-1,2- diamine
444D
(S)-N*1*-[7-(3-Amino-phenyl)- 6-tert-butyl-2-pyridin-4-yl- thieno[3,2-d]pyrimidin-4-yl]- 3-phenyl-propane-1,2-diamine
445D
(S)-N*1*-(6-tert-Butyl-7-furan- 3-yl-2-pyridin-4-yl-thieno[3,2- d]pyrimidin-4-yl)-3-phenyl- propane-1,2-diamine
446D
(S)-N*1*-[7-(5-Fluoro-2- isopropoxy-phenyl)-6-methyl- 2-pyridin-4-yl-thieno[3,2-d]- pyrimidin-4-yl]-3-phenyl- propane-1,2-diamine
447C
(S)-N*1*-[6-tert-Butyl-7-(5- methyl-thiophen-2-yl)-2- pyridin-4-yl-thieno[3,2-d]- pyrimidin-4-yl]-3-phenyl- propane-1,2-diamine
448C
(S)-N*1*-[6-tert-Butyl-7-(4- methylamino-phenyl)-2- pyridin-4-yl-thieno[3,2-d]- pyrimidin-4-yl]-3-phenyl- propane-1,2-diamine
449C
(S)-N*1*-(6-Methyl-7-phenyl- 2-pyridin-4-yl-thieno[3,2-d]- pyrimidin-4-yl)-3-phenyl- propane-1,2-diamine
450D
(S)-N*1*-[7-(2-Methoxy-5- methyl-phenyl)-6-methyl-2- pyridin-4-yl-thieno[3,2-d]- pyrimidin-4-yl]-3-phenyl- propane-1,2-diamine
451D
(S)-N*1*-(6-tert-Butyl-7- phenyl-2-pyridin-4-yl- thieno[3,2-d]pyrimidin-4- yl)-3-phenyl-propane-1,2- diamine
452D
(S)-N*1*-[7-(2-Chloro-6- trifluoromethyl-phenyl)-6- methyl-2-pyridin-4-yl-thieno- [3,2-d]pyrimidin-4-yl]-3- phenyl-propane-1,2-diamine
453D
(S)-N*1*-[7-(2-Chloro-6- methoxy-phenyl)-6-methyl-2- pyridin-4-yl-thieno[3,2-d]- pyrimidin-4-yl]-3-phenyl- propane-1,2-diamine
454D
(S)-N*1*-[7-(2,6-Dimethoxy- phenyl)-6-methyl-2-pyridin-4- yl-thieno[3,2-d]pyrimidin-4-yl]- 3-phenyl-propane-1,2-diamine
455D
(S)-N*1*-[7-(2-Isobutoxy-6- methoxy-phenyl)-6-methyl-2- pyridin-4-yl-thieno[3,2-d]- pyrimidin-4-yl]-3-phenyl- propane-1,2-diamine
456D
(S)-N*1*-[7-(3-Methoxy- pyridin-4-yl)-6-methyl-2- pyridin-4-yl-thieno[3,2-d]- pyrimidin-4-yl]-3-phenyl- propane-1,2-diamine
457D
(S)-N*1*-[7-(2,4-Dimethyl- thiazol-5-yl)-6-methyl-2- pyridin-4-yl-thieno[3,2-d]- pyrimidin-4-yl]-3-phenyl- propane-1,2-diamine
458D
(S)-N*1*-[7-(2-Isopropoxy-5- methyl-phenyl)-6-methyl-2- pyridin-4-yl-thieno[3,2- d]pyrimidin-4-yl]-3-phenyl- propane-1,2-diamine
459D
(S)-N*1*-[6-Methyl-7-(2- methyl-pyridin-3-yl)-2-pyridin- 4-yl-thieno[3,2-d]pyrimidin- 4-yl]-3-phenyl-propane-1,2- diamine
460D
(S)-N*1*-[7-(5-Chloro-2- isopropoxy-phenyl)-6-methyl- 2-pyridin-4-yl-thieno[3,2-d]- pyrimidin-4-yl]-3-phenyl- propane-1,2-diamine
461D
(S)-N*1*-[7-(5-tert-Butyl-2- methoxy-phenyl)-6-methyl-2- pyridin-4-yl-thieno[3,2-d]- pyrimidin-4-yl]-3-phenyl- propane-1,2-diamine
462D
(S)-N*1*-[7-(5-Isopropyl-2- methoxy-phenyl)-6-methyl-2- pyridin-4-yl-thieno[3,2-d]- pyrimidin-4-yl]-3-phenyl- propane-1,2-diamine
463D
(S)-N*1*-[7-(5-Chloro-2- ethoxy-phenyl)-6-methyl-2- pyridin-4-yl-thieno[3,2-d]- pyrimidin-4-yl]-3-phenyl- propane-1,2-diamine
464D
(S)-N*1*-[7-(2-Methoxy-5- trifluoromethyl-phenyl)-6- methyl-2-pyridin-4-yl- thieno[3,2-d]pyrimidin-4- yl]-3-phenyl-propane-1,2- diamine
465D
(S)-N*1*-[7-(2-Methoxy- pyridin-3-yl)-6-methyl-2- pyridin-4-yl-thieno[3,2-d]- pyrimidin-4-yl]-3-phenyl- propane-1,2-diamine
466D
(S)-N*1*-[7-(2,5-Dimethoxy- phenyl)-6-methyl-2-pyridin-4- yl-thieno[3,2-d]pyrimidin-4- yl]-3-phenyl-propane-1,2- diamine
467D
(S)-N*1*-[7-(5-Fluoro-2- methoxy-phenyl)-6-methyl-2- pyridin-4-yl-thieno[3,2-d]- pyrimidin-4-yl]-3-phenyl- propane-1,2-diamine
468C
(S)-N*1*-[6-tert-Butyl-7-(2H- pyrazol-3-yl)-2-pyridin-4-yl- thieno[3,2-d]pyrimidin-4-yl]- 3-phenyl-propane-1,2-diamine
469D
[7-Methyl-6-(2-methyl-2H- pyrazol-3-yl)-2-pyridin-4-yl- thieno[3,2-d]pyrimidin-4-l]- (R)-pyrrolidin-3-yl-amine
470D
Cyclopentanecarboxylic acid [4-((S)-2-amino-3-phenyl- propylamino)-2-pyridin-4-yl- thieno[3,2-d]pyrimidin-7-yl]- amide
471D
2,2-Dimethyl-N-[2-pyridin- 4-yl-4-((R)-pyrrolidin-3- ylamino)-thieno[3,2-d]- pyrimidin-7-yl]-butyramide
472D
N-[4-((S)-2-Amino-3-phenyl- propylamino)-2-pyridin-4-yl- thieno[3,2-d]pyrimidin-7-yl]- 2,2-dimethyl-butyramide
473D
Cyclohexanecarboxylic acid [2-pyridin-4-yl-4-((R)- pyrrolidin-3-ylamino)-thieno- [3,2-d]pyrimidin-7-yl]-amide
474D
Cyclohexanecarboxylic acid [4-((S)-2-amino-3-phenyl- propylamino)-2-pyridin-4-yl- thieno[3,2-d]pyrimidin-7-yl]- amide
475D
Cyclopentanecarboxylic acid [2-pyridin-4-yl-4-((R)- pyrrolidin-3-ylamino)-thieno- [3,2-d]pyrimidin-7-yl]-amide
476D*
7-Methyl-2-pyridin-4-yl-4-((R)- 1-pyrrolidin-2-ylmethoxy)- thieno[3,2-d]pyrimidine
477D*
(R)-1(9-Chloro-2-pyridin-4- yl-benzo[4,5]thieno[3,2-d]- pyrimidin-4-yloxymethyl)-2- phenyl-ethylamine
478D*
9-Chloro-2-pyridin-4-yl-4-((R)- 1-pyrrolidin-2-ylmethoxy)- benzo[4,5]thieno[3,2-d]- pyrimidine
479C*
9-Chloro-2-pyridin-4-yl-4-((S)- 1-pyrrolidin-2-ylmethoxy)- benzo[4,5]thieno[3,2-d]- pyrimidine
480D*
7-Methyl-2-pyridin-4-yl-4-((S)- 1-pyrrolidin-2-ylmethoxy)- thieno[3,2-d]pyrimidine
481D*
(S)-1-(7-Methyl-2-pyridin-4- thieno[3,2-d]pyrimidin-4- yloxymethyl)-2-phenyl- ethylamine
482D*
(R)-1-(7-Methyl-2-pyridin-4-yl- thieno[3,2-d]pyrimidin-4- yloxymethyl)-2-phenyl- ethylamine
483D*
7-Methyl-2-pyridin-4-yl-4-((S)- pyrrolidin-3-yloxy)-thieno[3,2- d]pyrimidine
484C*
7-Methyl-2-pyridin-4-yl-4-((R)- pyrrolidin-3-yloxy)-thieno[3,2- d]pyrimidine
485B
N*4*-((S)-2-Amino-3-phenyl- propyl)-N*7*-phenyl-2- pyridin-4-yl-thieno[3,2-d]- pyrimidine-4,7-diamine
486A
N*4*-((S)-2-Amino-3-phenyl- propyl)-2-pyridin-4-yl-N*7*- pyridin-2-yl-thieno[3,2-d]- pyrimidine-4,7-diamine
487C
2-Pyridin-4-yl-N*7*-pyridin-2- yl-N*4*-(R)-pyrrolidin-3-yl- thieno[3,2-d]pyrimidine-4,7- diamine
488B
N*4*-((S)-2-Amino-3-phenyl- propyl)-2-pyridin-4-yl-N*7*- pyrimidin-2-yl-thieno[3,2-d]- pyrimidine-4,7-diamine
489C
N*4*-((S)-2-Amino-3-phenyl- propyl)-2-pyridin-4-yl-N*7*- pyrimidin-4-yl-thieno[3,2-d]- pyrimidine-4,7-diamine
490A
N*4*-((S)-2-Amino-3-phenyl- propyl)-N*7*-(5-methyl- isoxazol-3-yl)-2-pyridin-4-yl- thieno[3,2-d]pyrimidine-4,7- diamine
491C
N*4*-((S)-2-Amino-3-phenyl- propyl)-2-(3-fluoro-pyridin-4- yl)-N*7*-phenyl-thieno[3,2-d]- pyrimidine-4,7-diamine
492D
2-(3-Fluoro-pyridin-4-yl)- N*4*-(R)-pyrrolidin-3-yl- N*7*-m-tolyl-thieno[3,2-d]- pyrimidine-4,7-diamine
493D
N*7*-(4-Fluoro-phenyl)-2-(3- fluoro-pyridin-4-yl)-N*4*-(R)- pyrrolidin-3-yl-thieno[3,2- d]pyrimidine-4,7-diamine
494D
2-(3-Fluoro-pyridin-4-yl)- N*7*-pyridin-3-yl-N*4*-(R)- pyrrolidin-3-yl-thieno[3,2- d]pyrimidine-4,7-diamine
495D
2-(3-Fluoro-pyridin-4-yl)- N*7-pyridin-2-yl-N*4*-(R)- pyrrolidin-3-yl-thieno[3,2- d]pyrimidine-4,7-diamine
496D
2-(3-Fluoro-pyridin-4-yl)- N*7*-(5-methyl-isoxazol-3- yl)-N*4*-(R)-pyrrolidin-3-yl- thieno[3,2-d]pyrimidine-4,7- diamine
497D
2-(3-Fluoro-pyridin-4-yl)- N*7*-isoxazol-3-yl-N*4*-(R)- pyrrolidin-3-yl-thieno[3,2-d]- pyrimidine-4,7-diamine
498C
2-(3-Fluoro-pyridin-4-yl)- N*4*-(R)-pyrrolidin-3-yl- N*7*-o-tolyl-thieno[3,2-d]- pyrimidine-4,7-diamine
499C
N*7*-(3-Fluoro-phenyl)-2-(3- fluoro-pyridin-4-yl)-N*4*-(R)- pyrrolidin-3-yl-thieno[3,2-d]- pyrimidine-4,7-diamine
500B
N*7*-(2-Fluoro-phenyl)-2- (3-fluoro-pyridin-4-yl)-N*4*- (R)-pyrrolidin-3-yl-thieno- [3,2-d]-pyrimidine-4,7- diamine
501B
4-[4-((S)-2-Amino-3-phenyl- propylamino)-2-(3-fluoro- pyridin-4-yl)-thieno[3,2-d]- pyrimidin-7-yl]-but-3-yn- 1-ol
502C
2-Methyl-4-[7-methyl-2- pyridin-4-yl-4-((R)- pyrrolidin-3-ylamino)- thieno[3,2-d]-pyrimidin- 6-yl]-but-3-yn-2-ol
503B
2-Methyl-4-[6-methyl-2- pyridin-4-yl-4-((R)- pyrrolidin-3-ylamino)- thieno[3,2-d]-pyrimidin- 7-yl]-but-3-yn-2-ol
504A
4-[4-((S)-2-Amino-3-phenyl- propylamino)-6-methyl-2- pyridin-4-yl-thieno[3,2-d]- pyrimidin-7-yl]-2-methyl-but- 3-yn-2-ol
505C
4-[4-((S)-2-Amino-3-phenyl- propylamino)-6-tert-butyl-2- pyridin-4-yl-thieno[3,2-d]- pyrimidin-7-yl]-2-methyl-but- 3-yn-2-ol
506A
3-[4-((S)-2-Amino-3-phenyl- propylamino)-2-(3-fluoro- pyridin-4-yl)-thieno[3,2-d]- pyrimidin-7-yl]-prop-2-yn-1-ol
507B
1-[4-((S)-2-Amino-3-phenyl- propylamino)-2-(3-fluoro- pyridin-4-yl)-thieno[3,2-d]- pyrimidin-7-ylethynyl]- cyclobutanol
508B
(S)-4-[4-((S)-2-Amino-3- phenyl-propylamino)-2-(3- fluoro-pyridin-4-yl)-thieno- [3,2-d]pyrimidin-7-yl]-but- 3-yn-2-ol
509B
4-[4-((S)-2-Amino-3-phenyl- propylamino)-2-(3-fluoro- pyridin-4-yl)-thieno[3,2-d]- pyrimidin-7-yl]-2-methyl- but-3-yn-2-ol
510A
4-[4-((S)-2-Amino-3-phenyl- propylamino)-2-pyridin-4-yl- thienol3,2-d]pyrimidin-7-yl]- 2-methyl-but-3-yn-2-ol
511C
(S)-N*1*-[7-(3,3-Dimethyl- but-1-ynyl)-2-pyridin-4-yl- thieno[3,2-d]-pyrimidin-4-yl]- 3-phenyl-propane-1,2-diamine
512A
(S)-N*1*-(7-Cyclopropyl- ethynyl-2-pyridin-4-yl- thieno[3,2-d]pyrimidin-4- yl)-3-phenyl-propane-1,2- diamine
513A
4-[4-((S)-2-Amino-3-phenyl- propylamino)-2-pyridin-4-yl- thieno[3,2-d]pyrimidin-7-yl]- but-3-yn-2-ol
514B
2-Methyl-4-[2-pyridin-4-yl-4- ((R)-pyrrolidin-3-ylamino)- thieno[3,2-d]pyrimidin-7-yl]- but-3-yn-2-ol
515A
3-[4-((S)-2-Amino-3-phenyl- propylamino)-2-pyridin-4-yl- thieno[3,2-d]pyrimidin-7-yl]- prop-2-yn-1-ol
516C
(S)-N*1*-[7-(3-Amino-3- methyl-but-1-ynyl)-2-pyridin- 4-yl-thieno[3,2-d]pyrimidin- 4-yl]-3-phenyl-propane-1,2- diamine
517A
(S)-4-[2-Pyridin-4-yl-4-((R)- pyrrolidin-3-ylamino)-thieno- [3,2-d]pyrimidin-7-yl]-but-3- yn-2-ol
518B
(S)-N*1*-[7-(3-Methyl-but-1- ynyl)-2-pyridin-4-yl-thieno- [3,2-d]pyrimidin-4-yl]-3- phenyl-propane-1,2-diamine
519C
4-[2-(3-Fluoro-pyridin-4-yl)- 4-((R)-pyrrolidin-3-ylamino)- thieno[3,2-d]pyrimidin-7-yl]- 2-methyl-but-3-yn-2-ol
520B
(S)-N*1*-[7-(3-Methoxy-3- methyl-but-1-ynyl)-2-pyridin- 4-yl-thieno[3,2-d]pyrimidin- 4-yl]-3-phenyl-propane-1,2- diamine
521A
S)-1-[4-((S)-2-Amino-3- phenyl-propylamino)-2- pyridin-4-yl-thieno[3,2-d]- pyrimidin-7-yl]-pent-1-yn- 3-ol
522C
(S)-1-[4-((S)-2-Amino-3- phenyl-propylamino)-2- pyridin-4-yl-thieno[3,2-d]- pyrimidin-7-yl]-4-methyl- hept-1-yn-3-ol
523B
(S)-1-[4-((S)-2-Amino-3- phenyl-propylamino)-2- pyridin-4-yl-thieno[3,2-d]- pyrimidin-7-yl]-3-methyl- pent-1-yn-3-ol
524C
(S)-1-[4-((S)-2-Amino-3- phenyl-propylamino)-2- pyridin-4-yl-thieno[3,2-d]- pyrimidin-7-yl]-3,4-dimethyl- pent-1-yn-3-ol
525C
1-[4-(2-Amino-3-phenyl- propylamino)-2-pyridin-4-yl- thieno[3,2-d]pyrimidin-7-yl]- 3-ethyl-pent-1-yn-3-ol
526B
(S)-1-[4-((S)-2-Amino-3- phenyl-propylamino)-2- pyridin-4-yl-thieno[3,2-d]- pyrimidin-7-yl]-hex-1-yn- 3-ol
527D
(S)-4-[2-(3-Fluoro-pyridin- 4-yl)-4-((R)-pyrrolidin-3- ylamino)-thieno[3,2-d]- pyrimidin-7-yl]-but-3-yn- 2-ol
528A
1-[4-((S)-2-Amino-3-phenyl- propylamino)-2-pyridin-4-yl- thieno[3,2-d]pyrimidin-7- ylethynyl]-cyclopentanol
529B
(S)-3-Phenyl-N*1*-(2-pyridin- 4-yl-7-pyridin-2-ylethynyl- thieno[3,2-d]pyrimidin-4-yl)- propane-1,2-diamine
530B
(S)-N*1*-[7-(2-Fluoro- phenylethynyl)-2-pyridin-4- yl-thieno[3,2-d]pyrimidin- 4-yl]-3-phenyl-propane-1,2- diamine
531A
4-[4-((S)-2-Amino-3-phenyl- propylamino)-2-pyridin-4-yl- thieno[3,2-d]pyrimidin-7-yl]- but-3-yn-1-ol
532A
1-[4-((S)-2-Amino-3-phenyl- propylamino)-2-pyridin-4-yl- thieno[3,2-d]pyrimidin-7- ylethynyl]-cyclopropanol
533A
(S)-4-[4-((S)-2-Amino-3- phenyl-propylamino)-2- pyridin-4-yl-thieno[3,2-d]- pyrimidin-7-yl]-but-3-yn-2-ol
534A
(R)-4-[4-((S)-2-Amino-3- phenyl-propylamino)-2- pyridin-4-yl-thieno[3,2-d]- pyrimidin-7-yl]-but-3-yn- 2-ol
535C
5-[4-((S)-2-Amino-3-phenyl- propylamino)-2-pyridin-4-yl- thieno[3,2-d]pyrimidin-7-yl]- pent-4-yn-1-ol
536A
5-(4-((S)-2-Amino-3-phenyl- propylamino)-2-pyridin-4-yl- thieno[3,2-d]pyrimidin-7-yl]- pent-4-yn-2-ol
537B
5-[4-((S)-2-Amino-3-phenyl- propylamino)-2-pyridin-4-yl- thieno[3,2-d]pyrimidin-7-yl]- 2-methyl-pent-4-yn-2-ol
538B
(S)-N*1*-[7-(3-Methylamino- prop-1-ynyl)-2-pyridin-4-yl- thieno[3,2-d]pyrimidin-4-yl]- 3-phenyl-propane-1,2-diamine
539A
1-[4-((S)-2-Amino-3-phenyl- propylamino)-2-pyridin-4-yl- thieno[3,2-d]pyrimidin-7- ylethynyl]-cyclobutanol
540B
(S)-5-[4-((S)-2-Amino-3- phenyl-propylamino)-2- pyridin-4-yl-thieno[3,2-d]- pyrimidin-7-yl]-pent-4-yn- 2-ol
541A
(S)-N*1*-(7-Ethynyl-2- pyridin-4-yl-thieno[3,2-d]- pyrimidin-4-yl)-3-phenyl- propane-1,2-diamine
542A
(S)-3-Phenyl-N*1*-(7-prop- 1-ynyl-2-pyridin-4-yl-thieno- [3,2-d]pyrimidin-4-yl)- propane-1,2-diamine
543C
(6-Ethynyl-7-methyl-2-pyridin- 4-yl-thieno[3,2-d]pyrimidin- 4-yl)-(R)-pyrrolidin-3-yl-amine
544A
(S)-N*1*-[7-((R)-3-Fluoro-but- 1-ynyl)-2-pyridin-4-yl-thieno- [3,2-d]pyrimidin-4-yl]-3- phenyl-propane-1,2-diamine
545A
(S)-N*1*-[7-(3-Fluoro-prop- 1-ynyl)-2-pyridin-4-yl-thieno- [3,2-d]pyrimidin-4-yl]-3- phenyl-propane-1,2-diamine
546B
(S)-N*1*-[7-(4-Fluoro-but-1- ynyl)-2-pyridin-4-yl-thieno- [3,2-d]pyrimidine
547A
(S)-3-Phenyl-N*1*-[2- pyridin-4-yl-7-(2H-[1,2,3]- triazol-4-yl)-thieno[3,2-d]- pyrimidin-4-yl]-propane- 1,2-diamine
548B
(S)-3-Phenyl-N*1*-(2-pyridin- 4-yl-7-thiazol-4-ylethynyl- thieno[3,2-d]pyrimidin-4-yl)- propane-1,2-diamine
549A
(S)-3-Phenyl-N*1*-[7-(1H- pyrazol-3-ylethynyl)-2-pyridin- 4-yl-thieno[3,2-d]pyrimidin- 4-yl]-propane-1,2-diamine
550C
4-((S)-2-Amino-3-phenyl- propylamino)-2-pyridin-4-yl- thieno[3,2-d]pyrimidine-7- carboxylic acid dimethylamide
551B
4-((S)-2-Amino-3-phenyl- propylamino)-2-pyridin-4-yl- thieno[3,2-d]pyrimidine-7- carboxylic acid propylamide
552C
4-((S)-2-Amino-3-phenyl- propylamino)-2-pyridin-4-yl- thieno[3,2-d]pyrimidine-7- carboxylic acid diethylamide
553A
4-((S)-2-Amino-3-phenyl- propylamino)-2-pyridin-4-yl- thieno[3,2-d]pyrimidine-7- carboxylic acid methylamide
554B
4-((S)-2-Amino-3-phenyl- propylamino)-2-pyridin-4-yl- thieno[3,2-d]pyrimidine-7- carboxylic acid ethylamide
555C
4-((S)-2-Amino-3-phenyl- propylamino)-2-pyridin-4-yl- thieno[3,2-d]pyrimidine-7- carboxylic acid isopropylamide
556B
4-((S)-2-Amino-3-phenyl- propylamino)-2-pyridin-4-yl- thieno[3,2-d]pyrimidine-7- carboxylic acid cyclopropyl- amide
557C
4-((S)-2-Amino-3-phenyl- propylamino)-2-pyridin-4-yl- thieno[3,2-d]pyrimidine-7- carboxylic acid tert-butylamide
558B
(E)-3-[4-((S)-2-Amino-3- phenyl-propylamino)-2- pyridin-4-yl-thieno[3,2-d]- pyrimidin-7-yl]-acrylic acid
559B
(7-Ethynyl-2-pyridin-4-yl- thieno[3,2-d]pyrimidin-4-yl)- (R)-pyrrolidin-3-yl-amine
560A
4-((S)-2-Amino-3-phenyl- propylamino)-2-pyridin-4-yl- thieno[3,2-d]pyrimidine-7- carbonitrile
561B
(S)-3-Phenyl-N*1*-(7- pyrazol-1-yl-2-pyridin-4-yl- thieno[3,2-d]pyrimidin-4- yl)-propane-1,2-diamine
562B
(S)-3-Phenyl-N*1*-(2-pyridin- 4-yl-7-[1,2,3]triazol-1-yl- thieno[3,2-d]pyrimidin-4-yl)- propane-1,2-diamine
563C
(S)-N*1*-[7-(2-Cyclopropyl- ethyl)-2-pyridin-4-yl-thieno- [3,2-d]pyrimidin-4-yl]-3- phenyl-propane-1,2-diamine
564C
S)-N*1*-[7-Bromo-2-(1-oxy- pyridin-4-yl)-thieno[3,2-d]- pyrimidin-4-yl]-3-phenyl- propane-1,2-diamine
565C
(S)-N*1*-[2-(1-Oxy-pyridin- 4-yl)-7-(2H-pyrazol-3-yl)- thieno[3,2-d]pyrimidin-4-yl]- 3-phenyl-propane-1,2-diamine
566B
N*4*-((S)-2-Amino-3-phenyl- propyl)-2-pyridin-4-yl- thieno[3,2-d]pyrimidine-4,7- diamine
567C
2-Pyridin-4-yl-N*4*-(R)- pyrrolidin-3-yl-thieno[3,2-d]- pyrimidine-4,7-diamine
568B
(S)-N*1*-[7-(5-Methyl- isoxazol-3-yl)-2-pyridin-4- yl-thieno[3,2-d]pyrimidin-4- yl]-3-phenyl-propane-1,2- diamine
569A
(S)-N*1*-[7-(5-Methyl-1H- pyrazol-3-yl)-2-pyridin-4-yl- thieno[3,2-d]pyrimidin-4-yl]- 3-phenyl-propane-1,2- diamine
570C
(S)-N*1*-[7-(5-Ethyl-isoxazol- 3-yl)-2-pyridin-4-yl-thieno- [3,2-d]pyrimidin-4-yl]-3- phenyl-propane-1,2-diamine
571A
(S)-N*1*-[7-(5-Ethyl-2H- pyrazol-3-yl)-2-pyridin-4-yl- thieno[3,2-d]pyrimidin-4-yl]- 3-phenyl-propane-1,2- diamine
572B
(S)-N*1*-(7-Isoxazol-3-yl-2- pyridin-4-yl-thieno[3,2-d]- pyrimidin-4-yl)-3-phenyl- propane-1,2-diamine
573C
[2-(2-Phenylamino-pyridin-4- yl)-thieno[3,2-d]pyrimidin-4- yl]-(R)-pyrrolidin-3-yl-amine
574C
Furan-2-carboxylic acid {4- [4-((R)-pyrrolidin-3-ylamino)- thieno[3,2-d]pyrimidin-2-yl]- pyridin-2-yl}-amide
575B
1-Phenyl-3-{4-[4-((R)- pyrrolidin-3-ylamino)-thieno- [3,2-d]pyrimidin-2-yl]-pyridin- 2-yl}-urea
576D
N-{4-[4-((R)-Pyrrolidin-3- ylamino)-thieno[3,2-d]- pyrimidin-2-yl]-pyridin-2- yl}-benzenesulfonamide
577B
{2-[2-(Pyrazin-2- ylamino)-pyridin-4-yl]- thieno[3,2-d]-pyrimidin- 4-yl}-(R)-pyrrolidin-3- yl-amine
578B
(S)-Tetrahydro-furan-2- carboxylic acid {4-[4-((R)- pyrrolidin-3-ylamino)- thieno[3,2-d]pyrimidin-2- yl]-pyridin-2-yl}-amide
579C
[2-(5-Fluoro-2-phenylamino- pyridin-4-yl)-thieno[3,2-d]- pyrimidin-4-yl]-(R)-pyrrolidin- 3-yl-amine
580B
{2-[5-Fluoro-2-(pyrazin-2- ylamino)-pyridin-4-yl]- thieno[3,2-d]pyrimidin-4-yl}- (R)-pyrrolidin-3-yl-amine
581C
1,1-Dimethyl-3-{4-[4-((R)- pyrrolidin-3-ylamino)- thieno[3,2-d]pyrimidin-2- yl]-pyridin-2-yl}-urea
582C
1-tert-Butyl-3-{4-[4-((R)- pyrrolidin-3-ylamino)- thieno[3,2-d]pyrimidin- 2-yl]-pyridin-2-yl}-urea
583C
1-Methyl-3-{4-[4-((R)- pyrrolidin-3-ylamino)- thieno[3,2-d]pyrimidin-2- yl]-pyridin-2-yl}-urea
584C
Piperidine-1-carboxylic acid {4-[4-((R)-pyrrolidin-3- ylamino)-thieno[3,2-d]- pyrimidin-2-yl]-pyridin-2- yl}-amide
585C
{2-[3-Fluoro-2-(pyrazin-2- ylamino)-pyridin-4-yl]- thieno[3,2-d]pyrimidin-4- yl}-(R)-pyrrolidin-3-yl- amine
586B
{2-[2-((R)-1-Phenyl- ethylamino)-pyridin-4-yl]- thieno[3,2-d]pyrimidin-4- yl}-(R)-pyrrolidin-3-yl- amine
587B
{2-[2-((S)-1-Phenyl- ethylamino)-pyridin-4- yl]-thieno[3,2-d]pyrimidin- 4-yl}-(R)-pyrrolidin-3-yl- amine
588B
{2-[2-(6-Methyl-pyridazin- 3-ylamino)-pyridin-4-yl]- thieno[3,2-d]pyrimidin-4-yl}- (R)-pyrrolidin-3-yl-amine
589C
{2-[2-((S)-1-Phenyl- propylamino)-pyridin-4- yl]-thieno[3,2-d]pyrimidin- 4-yl}-(R)-pyrrolidin-3-yl- amine
590C
{2-[2-((R)-1-Phenyl- propylamino)-pyridin-4- yl]-thieno[3,2-d]pyrimidin- 4-yl}-(R)-pyrrolidin-3-yl- amine
591C
(S)-1-{4-[4-((R)-Pyrrolidin- 3-ylamino)-thieno[3,2-d]- pyrimidin2-yl]-pyridin-2- ylamino}-propan-2-ol
592C
(R)-1-{4-[4-((R)-Pyrrolidin- 3-ylamino)-thieno[3,2-d]- pyrimidin-2-yl]-pyridin-2- ylamino}-propan-2-ol
593C
(R)-1-Phenyl-2-{4-[4-((R)- pyrrolidin-3-ylamino)- thieno[3,2-d]pyrimidin-2-yl]- pyridin-2-ylamino}-ethanol
594C
[2-(2-Cyclopropylamino- pyridin-4-yl)-thieno[3,2-d]- pyrimidin-4-yl]-(R)-pyrrolidin- 3-yl-amine
595B
Thiophene-2-carboxylic acid {4-[4-((R)-pyrrolidin-3- ylamino)-thieno[3,2-d]- pyrimidin-2-yl]-pyridin-2- yl}-amide
596B
3-Methoxy-N-{4-[4-((R)- pyrrolidin-3-ylamino)- thieno[3,2-d]pyrimidin-2- yl]-pyridin-2-yl}-benzamide
597C
{2-[2-(Cyclopropylmethyl- amino)-pyridin-4-yl]-thieno- [3,2-d]pyrimidin-4-yl}-(R)- pyrrolidin-3-yl-amine
598C
[2-(2-Benzylamino-pyridin-4- yl)-thieno[3,2-d]pyrimidin-4- yl]-(R)-pyrrolidin-3-yl-amine
599B
Cyclopropanecarboxylic acid {4-[4-((R)-pyrrolidin- 3-ylamino)-thieno[3,2-d]- pyrimidin-2-yl]-pyridin-2- yl}-amide
600C
{2-[2-(Pyridin-2-ylamino)- pyridin-4-yl]-thieno[3,2-d]- pyrimidin-4-yl}-(R)- pyrrolidin-3-yl-amine
601B
{2-[2-(5-Phenyl-pyridin-2- ylamino)-pyridin-4-yl]- thieno[3,2-d]pyrimidin-4- yl}-(R)-pyrrolidin-3-yl- amine
602B
{2-[2-(5-Morpholin-4-yl- pyridin-2-ylamino)-pyridin- 4-yl]-thieno[3,2-d]pyrimidin- 4-yl}-(R)-pyrrolidin-3-yl- amine
603B
(2-{2-[5-(4-Methyl-piperazin- 1-yl)-pyridin-2-ylamino]- pyridin-4-yl}-thieno[3,2-d]- pyrimidin-4-yl)-(R)- pyrrolidin-3-yl-amine
604B
6-{4-[4-((R)-Pyrrolidin-3- ylamino)-thieno[3,2-d]- pyrimidin-2-yl]-pyridin-2- ylamino)-nicotinonitrile
605B
(2-{2-[3-(4-Methyl-piperazin- 1-yl)-phenylamino]-pyridin- 4-yl}-thieno[3,2-d]pyrimidin- 4-yl)-(R)-pyrrolidin-3-yl- amine
606C
3-{4-[4-((R)-Pyrrolidin-3- ylamino)-thieno[3,2-d]- pyrimidin-2-yl]-pyridin-2- ylamino}-benzonitrile
607C
4-{4-[4-((R)-Pyrrolidin-3- ylamino)-thieno[3,2-d]- pyrimidin-2-yl]-pyridin-2- ylamino}-benzonitrile
608B
{2-[2-(4-Piperidin-1-yl- phenylamino)-pyridin-4- yl]-thieno[3,2-d]pyrimidin- 4-yl}-(R)-pyrrolidin-3-yl- amine
609B
6-{4-[4-((R)-Pyrrolidin-3- ylamino)-thieno[3,2-d]- pyrimidin-2-yl]-pyridin-2- ylamino}-nicotinonitrile
610C
N,N-Dimethyl-4-{4-[4-((R)- pyrrolidin-3-ylamino)- thieno[3,2-d]pyrimidin-2- yl]-pyridin-2-ylamino}- benzenesulfonamide
611C
(R)-Pyrrolidin-3-yl-{2-[2-(4- pyrrolidin-1-ylmethyl- phenylamino)-pyridin-4-yl]- thieno[3,2-]pyrimidin-4-yl}- amine
612C
(2-{2-[3-(Propane-2-sulfonyl)- phenylamino]-pyridin-4-yl}- thieno[3,2-d]pyrimidin-4-yl)- (R)-pyrrolidin-3-yl-amine
613B
(4-Methyl-piperazin-1-yl)- (4-{4-[4-((R)-pyrrolidin-3- ylamino)-thieno[3,2-d]- pyrimidin-2-yl]-pyridin- 2-ylamino}-phenyl)- methanone
614B
{2-[2-(4-Imidazol-1-ylmethyl- phenylamino)-pyridin-4-yl]- thieno[3,2-d]pyrimidin-4-yl}- (R)-pyrrolidin-3-yl-amine
615C
Pyrazine-2-carboxylic acid {4-[4-((R)-pyrrolidin-3- ylamino)-thieno[3,2-d]- pyrimidin-2-yl]-pyridin-2- yl}-amide
616B
(R)-Pyrrolidin-3-yl-{2-[2- (4-thiophen-2-yl-phenyl- amino)-pyridin-4-yl]- thieno[3,2-d]pyrimidin-4- yl}-amine
617B
(R)-Pyrrolidin-3-yl-{2-[2-(4- thiophen-3-yl-phenylamino)- pyridin-4-yl]-thieno[3,2-d]- pyrimidin-4-yl}-amine
618B
4-Fluoro-N-{4-[4-((R)- pyrrolidin-3-ylamino)-thieno- [3,2-d]pyrimidin-2-yl]- pyridin-2-yl}-benzamide
619D
[2-(3-Fluoro-2-phenylamino- pyridin-4-yl)-thieno[3,2-d]- pyrimidin-4-yl]-(R)- pyrrolidin-3-yl-amine
620B
4-(4-Methyl-piperazin-1-yl)- N-{4-[4-((R)-pyrrolidin-3- ylamino)-thieno[3,2-d]- pyrimidin-2-yl]-pyridin-2- yl}-benzamide
621B
4-Morpholin-4-yl-N-{4-[4- ((R)-pyrrolidin-3-ylamino)- thieno[3,2-d]pyrimidin-2-yl]- pyridin-2-yl}-benzamide
622D
Cyclopropanesulfonic acid {4-[4-((R)-pyrrolidin-3- ylamino)-thieno[3,2-d]- pyrimidin-2-yl]-pyridin-2- yl}-amide
623D
[2-(2-Cyclohexylamino- pyridin-4-yl)-thieno[3,2- d]pyrimidin-4-yl]-(R)- pyrrolidin-3-yl-amine
624D
N-{4-[4-((R)-Pyrrolidin-3- ylamino)-thieno[3,2-d]- pyrimidin-2-yl]-pyridin-2- yl}-methanesulfonamide
625D
(R)-Pyrrolidin-3-yl-{2-[2- (tetrahydro-pyran-4-ylamino)- pyridin-4-yl]-thieno[3,2-d]- pyrimidin-4-yl}-amine
626C
[2-(2-Isopropylamino-pyridin- 4-yl)-thieno[3,2-d]pyrimidin- 4-yl]-(R)-pyrrolidin-3-yl- amine
627C
Thiophene-2-carboxylic acid {4-[4-((3S,4S)-4-hydroxy- pyrrolidin-3-ylamino)- thieno[3,2-d]pyrimidin-2- yl]-pyridin-2-yl}-amide
628C
Thiophene-2-carboxylic acid {4-[4-((R)-1-methyl- pyrrolidin-3-ylamino)- thieno[3,2-d]pyrimidin-2- yl]-pyridin-2-yl}-amide
629C
Thiophene-2-carboxylic acid {4-[4-((3S,4S)-1-carbamoyl- methyl-4-hydroxy-pyrrolidin- 3-ylamino)-thieno[3,2-d]- pyrimidin-2-yl]-pyridin-2- yl}-amide
630D
Thiophene-2-carboxylic acid (4-{4-[(S)-2-amino-3-(4- trifluoromethyl-phenyl)- propylamino]-thieno[3,2-d]- pyrimidin-2-yl}-pyridin-2- yl)-amide
631D
2-{(R)-3-[2-(2-Phenylamino- [pyridin-4-yl)-thieno[3,2-d]- pyrimidin-4-ylamino]- pyrrolidin-1-yl}-acetamide
632C
633D
[2-(5-Methyl-1H-pyrazol-4- yl)-thieno[3,2-d]pyrimidin-4- yl]-(R)-pyrrolidin-3-yl-amine
634C
(S)-N*1*-[2-(5-Methyl-1H- pyrazol-4-yl)-thieno[3,2-d]- pyrimidin-4-yl]-3-phenyl- propane-1,2-diamine
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Classifications

5 codes
IPC · International Patent Classification
Section C — Chemistry; metallurgy
  • C07D495/20
  • C07D495/04
  • C07F7/08
  • C07D519/00
  • C07D495/14

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